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athos@1247
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     1  | 
/* -*- C++ -*-
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ladanyi@1435
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     2  | 
 * lemon/lp_base.h - Part of LEMON, a generic C++ optimization library
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athos@1247
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     3  | 
 *
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athos@1247
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     4  | 
 * Copyright (C) 2005 Egervary Jeno Kombinatorikus Optimalizalasi Kutatocsoport
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alpar@1359
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     5  | 
 * (Egervary Research Group on Combinatorial Optimization, EGRES).
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athos@1247
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     6  | 
 *
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athos@1247
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     7  | 
 * Permission to use, modify and distribute this software is granted
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athos@1247
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     8  | 
 * provided that this copyright notice appears in all copies. For
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athos@1247
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     9  | 
 * precise terms see the accompanying LICENSE file.
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athos@1247
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    10  | 
 *
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athos@1247
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    11  | 
 * This software is provided "AS IS" with no warranty of any kind,
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athos@1247
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    12  | 
 * express or implied, and with no claim as to its suitability for any
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athos@1247
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    13  | 
 * purpose.
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athos@1247
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    14  | 
 *
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athos@1247
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    15  | 
 */
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athos@1247
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    16  | 
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athos@1246
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    17  | 
#ifndef LEMON_LP_BASE_H
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athos@1246
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    18  | 
#define LEMON_LP_BASE_H
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athos@1246
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    19  | 
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alpar@1253
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    20  | 
#include<vector>
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alpar@1272
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    21  | 
#include<map>
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alpar@1256
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    22  | 
#include<limits>
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alpar@1397
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    23  | 
#include<cmath>
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alpar@1253
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    24  | 
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alpar@1256
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    25  | 
#include<lemon/utility.h>
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alpar@1253
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    26  | 
#include<lemon/error.h>
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alpar@1256
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    27  | 
#include<lemon/invalid.h>
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alpar@1253
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    28  | 
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athos@1246
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    29  | 
///\file
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athos@1246
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    30  | 
///\brief The interface of the LP solver interface.
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alpar@1328
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    31  | 
///\ingroup gen_opt_group
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athos@1246
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    32  | 
namespace lemon {
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alpar@1253
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    33  | 
  
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alpar@1253
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    34  | 
  ///Internal data structure to convert floating id's to fix one's
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alpar@1253
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    35  | 
    
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alpar@1279
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    36  | 
  ///\todo This might be implemented to be also usable in other places.
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alpar@1253
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    37  | 
  class _FixId 
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alpar@1253
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    38  | 
  {
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alpar@1253
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    39  | 
    std::vector<int> index;
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alpar@1253
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    40  | 
    std::vector<int> cross;
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alpar@1253
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    41  | 
    int first_free;
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alpar@1253
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    42  | 
  public:
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alpar@1253
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    43  | 
    _FixId() : first_free(-1) {};
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alpar@1253
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    44  | 
    ///Convert a floating id to a fix one
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alpar@1253
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    45  | 
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alpar@1253
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    46  | 
    ///\param n is a floating id
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alpar@1253
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    47  | 
    ///\return the corresponding fix id
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alpar@1484
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    48  | 
    int fixId(int n) const {return cross[n];}
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alpar@1253
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    49  | 
    ///Convert a fix id to a floating one
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alpar@1253
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    50  | 
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alpar@1253
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    51  | 
    ///\param n is a fix id
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alpar@1253
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    52  | 
    ///\return the corresponding floating id
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alpar@1484
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    53  | 
    int floatingId(int n) const { return index[n];}
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alpar@1253
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    54  | 
    ///Add a new floating id.
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alpar@1253
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    55  | 
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alpar@1253
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    56  | 
    ///\param n is a floating id
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alpar@1253
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    57  | 
    ///\return the fix id of the new value
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alpar@1253
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    58  | 
    ///\todo Multiple additions should also be handled.
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alpar@1253
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    59  | 
    int insert(int n)
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alpar@1253
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    60  | 
    {
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alpar@1253
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    61  | 
      if(n>=int(cross.size())) {
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alpar@1253
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    62  | 
	cross.resize(n+1);
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alpar@1253
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    63  | 
	if(first_free==-1) {
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alpar@1253
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    64  | 
	  cross[n]=index.size();
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alpar@1253
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    65  | 
	  index.push_back(n);
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alpar@1253
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    66  | 
	}
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alpar@1253
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    67  | 
	else {
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alpar@1253
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    68  | 
	  cross[n]=first_free;
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alpar@1253
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    69  | 
	  int next=index[first_free];
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alpar@1253
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    70  | 
	  index[first_free]=n;
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alpar@1253
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    71  | 
	  first_free=next;
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alpar@1253
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    72  | 
	}
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alpar@1256
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    73  | 
	return cross[n];
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alpar@1253
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    74  | 
      }
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alpar@1273
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    75  | 
      ///\todo Create an own exception type.
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alpar@1253
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    76  | 
      else throw LogicError(); //floatingId-s must form a continuous range;
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alpar@1253
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    77  | 
    }
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alpar@1253
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    78  | 
    ///Remove a fix id.
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alpar@1253
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    79  | 
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alpar@1253
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    80  | 
    ///\param n is a fix id
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alpar@1253
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    81  | 
    ///
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alpar@1253
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    82  | 
    void erase(int n) 
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alpar@1253
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    83  | 
    {
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alpar@1253
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    84  | 
      int fl=index[n];
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alpar@1253
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    85  | 
      index[n]=first_free;
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alpar@1253
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    86  | 
      first_free=n;
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alpar@1253
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    87  | 
      for(int i=fl+1;i<int(cross.size());++i) {
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alpar@1253
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    88  | 
	cross[i-1]=cross[i];
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alpar@1253
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    89  | 
	index[cross[i]]--;
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alpar@1253
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    90  | 
      }
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alpar@1253
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    91  | 
      cross.pop_back();
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alpar@1253
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    92  | 
    }
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alpar@1253
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    93  | 
    ///An upper bound on the largest fix id.
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alpar@1253
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    94  | 
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alpar@1253
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    95  | 
    ///\todo Do we need this?
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alpar@1253
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    96  | 
    ///
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alpar@1253
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    97  | 
    std::size_t maxFixId() { return cross.size()-1; }
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alpar@1253
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    98  | 
  
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alpar@1253
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    99  | 
  };
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alpar@1253
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   100  | 
    
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alpar@1253
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   101  | 
  ///Common base class for LP solvers
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alpar@1328
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   102  | 
  
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alpar@1328
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   103  | 
  ///\todo Much more docs
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alpar@1328
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   104  | 
  ///\ingroup gen_opt_group
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athos@1246
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   105  | 
  class LpSolverBase {
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alpar@1323
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   106  | 
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athos@1247
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   107  | 
  public:
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athos@1247
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   108  | 
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athos@1458
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   109  | 
    ///Possible outcomes of an LP solving procedure
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alpar@1303
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   110  | 
    enum SolveExitStatus {
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athos@1458
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   111  | 
      ///This means that the problem has been successfully solved: either
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athos@1458
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   112  | 
      ///an optimal solution has been found or infeasibility/unboundedness
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athos@1458
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   113  | 
      ///has been proved.
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alpar@1293
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   114  | 
      SOLVED = 0,
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athos@1458
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   115  | 
      ///Any other case (including the case when some user specified limit has been exceeded)
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alpar@1293
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   116  | 
      UNSOLVED = 1
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athos@1291
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   117  | 
    };
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athos@1291
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   118  | 
      
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athos@1460
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   119  | 
      ///\e
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alpar@1303
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   120  | 
    enum SolutionStatus {
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alpar@1295
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   121  | 
      ///Feasible solution has'n been found (but may exist).
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alpar@1295
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   122  | 
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alpar@1295
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   123  | 
      ///\todo NOTFOUND might be a better name.
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alpar@1295
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   124  | 
      ///
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alpar@1293
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   125  | 
      UNDEFINED = 0,
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alpar@1295
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   126  | 
      ///The problem has no feasible solution
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alpar@1293
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   127  | 
      INFEASIBLE = 1,
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alpar@1295
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   128  | 
      ///Feasible solution found
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alpar@1293
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   129  | 
      FEASIBLE = 2,
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alpar@1295
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   130  | 
      ///Optimal solution exists and found
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alpar@1295
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   131  | 
      OPTIMAL = 3,
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alpar@1295
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   132  | 
      ///The cost function is unbounded
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alpar@1295
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   133  | 
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alpar@1295
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   134  | 
      ///\todo Give a feasible solution and an infinite ray (and the
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alpar@1295
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   135  | 
      ///corresponding bases)
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alpar@1295
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   136  | 
      INFINITE = 4
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alpar@1263
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   137  | 
    };
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athos@1460
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   138  | 
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athos@1542
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   139  | 
    ///\e The type of the investigated LP problem
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athos@1542
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   140  | 
    enum ProblemTypes {
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athos@1542
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   141  | 
      ///Primal-dual feasible
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athos@1542
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   142  | 
      PRIMAL_DUAL_FEASIBLE = 0,
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athos@1542
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   143  | 
      ///Primal feasible dual infeasible
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athos@1542
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   144  | 
      PRIMAL_FEASIBLE_DUAL_INFEASIBLE = 1,
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athos@1542
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   145  | 
      ///Primal infeasible dual feasible
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athos@1542
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   146  | 
      PRIMAL_INFEASIBLE_DUAL_FEASIBLE = 2,
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athos@1542
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   147  | 
      ///Primal-dual infeasible
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athos@1542
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   148  | 
      PRIMAL_DUAL_INFEASIBLE = 3,
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athos@1542
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   149  | 
      ///Could not determine so far
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athos@1542
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   150  | 
      UNKNOWN = 4
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athos@1542
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   151  | 
    };
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athos@1508
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   152  | 
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alpar@1256
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   153  | 
    ///The floating point type used by the solver
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athos@1247
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   154  | 
    typedef double Value;
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alpar@1256
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   155  | 
    ///The infinity constant
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athos@1247
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   156  | 
    static const Value INF;
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alpar@1264
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   157  | 
    ///The not a number constant
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alpar@1264
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   158  | 
    static const Value NaN;
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alpar@1253
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   159  | 
    
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alpar@1256
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   160  | 
    ///Refer to a column of the LP.
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alpar@1256
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   161  | 
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alpar@1256
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   162  | 
    ///This type is used to refer to a column of the LP.
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alpar@1256
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   163  | 
    ///
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alpar@1256
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   164  | 
    ///Its value remains valid and correct even after the addition or erase of
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alpar@1273
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   165  | 
    ///other columns.
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alpar@1256
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   166  | 
    ///
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alpar@1256
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   167  | 
    ///\todo Document what can one do with a Col (INVALID, comparing,
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alpar@1256
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   168  | 
    ///it is similar to Node/Edge)
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alpar@1256
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   169  | 
    class Col {
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alpar@1256
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   170  | 
    protected:
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alpar@1256
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   171  | 
      int id;
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alpar@1256
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   172  | 
      friend class LpSolverBase;
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alpar@1256
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   173  | 
    public:
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alpar@1259
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   174  | 
      typedef Value ExprValue;
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alpar@1256
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   175  | 
      typedef True LpSolverCol;
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alpar@1256
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   176  | 
      Col() {}
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alpar@1256
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   177  | 
      Col(const Invalid&) : id(-1) {}
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alpar@1256
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   178  | 
      bool operator<(Col c) const  {return id<c.id;}
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alpar@1256
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   179  | 
      bool operator==(Col c) const  {return id==c.id;}
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alpar@1256
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   180  | 
      bool operator!=(Col c) const  {return id==c.id;}
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alpar@1256
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   181  | 
    };
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alpar@1256
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   182  | 
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alpar@1256
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   183  | 
    ///Refer to a row of the LP.
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alpar@1256
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   184  | 
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alpar@1256
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   185  | 
    ///This type is used to refer to a row of the LP.
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alpar@1256
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   186  | 
    ///
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alpar@1256
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   187  | 
    ///Its value remains valid and correct even after the addition or erase of
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alpar@1273
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   188  | 
    ///other rows.
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alpar@1256
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   189  | 
    ///
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alpar@1256
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   190  | 
    ///\todo Document what can one do with a Row (INVALID, comparing,
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alpar@1256
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   191  | 
    ///it is similar to Node/Edge)
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alpar@1256
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   192  | 
    class Row {
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alpar@1256
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   193  | 
    protected:
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alpar@1256
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   194  | 
      int id;
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alpar@1256
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   195  | 
      friend class LpSolverBase;
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alpar@1256
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   196  | 
    public:
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alpar@1259
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   197  | 
      typedef Value ExprValue;
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alpar@1256
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   198  | 
      typedef True LpSolverRow;
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alpar@1256
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   199  | 
      Row() {}
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alpar@1256
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   200  | 
      Row(const Invalid&) : id(-1) {}
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alpar@1439
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   201  | 
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alpar@1256
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   202  | 
      bool operator<(Row c) const  {return id<c.id;}
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alpar@1256
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   203  | 
      bool operator==(Row c) const  {return id==c.id;}
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alpar@1256
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   204  | 
      bool operator!=(Row c) const  {return id==c.id;} 
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alpar@1256
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   205  | 
   };
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alpar@1259
 | 
   206  | 
    
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alpar@1279
 | 
   207  | 
    ///Linear expression of variables and a constant component
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alpar@1279
 | 
   208  | 
    
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alpar@1279
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   209  | 
    ///This data structure strores a linear expression of the variables
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alpar@1279
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   210  | 
    ///(\ref Col "Col"s) and also has a constant component.
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alpar@1279
 | 
   211  | 
    ///
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alpar@1279
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   212  | 
    ///There are several ways to access and modify the contents of this
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alpar@1279
 | 
   213  | 
    ///container.
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| 
alpar@1279
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   214  | 
    ///- Its it fully compatible with \c std::map<Col,double>, so for expamle
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alpar@1364
 | 
   215  | 
    ///if \c e is an Expr and \c v and \c w are of type \ref Col, then you can
  | 
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alpar@1279
 | 
   216  | 
    ///read and modify the coefficients like
  | 
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alpar@1279
 | 
   217  | 
    ///these.
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alpar@1279
 | 
   218  | 
    ///\code
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alpar@1279
 | 
   219  | 
    ///e[v]=5;
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alpar@1279
 | 
   220  | 
    ///e[v]+=12;
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alpar@1279
 | 
   221  | 
    ///e.erase(v);
  | 
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alpar@1279
 | 
   222  | 
    ///\endcode
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alpar@1279
 | 
   223  | 
    ///or you can also iterate through its elements.
  | 
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alpar@1279
 | 
   224  | 
    ///\code
  | 
| 
alpar@1279
 | 
   225  | 
    ///double s=0;
  | 
| 
alpar@1279
 | 
   226  | 
    ///for(LpSolverBase::Expr::iterator i=e.begin();i!=e.end();++i)
  | 
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alpar@1279
 | 
   227  | 
    ///  s+=i->second;
  | 
| 
alpar@1279
 | 
   228  | 
    ///\endcode
  | 
| 
alpar@1279
 | 
   229  | 
    ///(This code computes the sum of all coefficients).
  | 
| 
alpar@1279
 | 
   230  | 
    ///- Numbers (<tt>double</tt>'s)
  | 
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alpar@1279
 | 
   231  | 
    ///and variables (\ref Col "Col"s) directly convert to an
  | 
| 
alpar@1279
 | 
   232  | 
    ///\ref Expr and the usual linear operations are defined so  
  | 
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alpar@1279
 | 
   233  | 
    ///\code
  | 
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alpar@1279
 | 
   234  | 
    ///v+w
  | 
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alpar@1279
 | 
   235  | 
    ///2*v-3.12*(v-w/2)+2
  | 
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alpar@1279
 | 
   236  | 
    ///v*2.1+(3*v+(v*12+w+6)*3)/2
  | 
| 
alpar@1279
 | 
   237  | 
    ///\endcode
  | 
| 
alpar@1328
 | 
   238  | 
    ///are valid \ref Expr "Expr"essions.
  | 
| 
alpar@1328
 | 
   239  | 
    ///The usual assignment operations are also defined.
  | 
| 
alpar@1279
 | 
   240  | 
    ///\code
  | 
| 
alpar@1279
 | 
   241  | 
    ///e=v+w;
  | 
| 
alpar@1279
 | 
   242  | 
    ///e+=2*v-3.12*(v-w/2)+2;
  | 
| 
alpar@1279
 | 
   243  | 
    ///e*=3.4;
  | 
| 
alpar@1279
 | 
   244  | 
    ///e/=5;
  | 
| 
alpar@1279
 | 
   245  | 
    ///\endcode
  | 
| 
alpar@1279
 | 
   246  | 
    ///- The constant member can be set and read by \ref constComp()
  | 
| 
alpar@1279
 | 
   247  | 
    ///\code
  | 
| 
alpar@1279
 | 
   248  | 
    ///e.constComp()=12;
  | 
| 
alpar@1279
 | 
   249  | 
    ///double c=e.constComp();
  | 
| 
alpar@1279
 | 
   250  | 
    ///\endcode
  | 
| 
alpar@1279
 | 
   251  | 
    ///
  | 
| 
alpar@1328
 | 
   252  | 
    ///\note \ref clear() not only sets all coefficients to 0 but also
  | 
| 
alpar@1279
 | 
   253  | 
    ///clears the constant components.
  | 
| 
alpar@1328
 | 
   254  | 
    ///
  | 
| 
alpar@1328
 | 
   255  | 
    ///\sa Constr
  | 
| 
alpar@1328
 | 
   256  | 
    ///
  | 
| 
alpar@1273
 | 
   257  | 
    class Expr : public std::map<Col,Value>
  | 
| 
alpar@1272
 | 
   258  | 
    {
 | 
| 
alpar@1272
 | 
   259  | 
    public:
  | 
| 
alpar@1273
 | 
   260  | 
      typedef LpSolverBase::Col Key; 
  | 
| 
alpar@1273
 | 
   261  | 
      typedef LpSolverBase::Value Value;
  | 
| 
alpar@1272
 | 
   262  | 
      
  | 
| 
alpar@1272
 | 
   263  | 
    protected:
  | 
| 
alpar@1273
 | 
   264  | 
      typedef std::map<Col,Value> Base;
  | 
| 
alpar@1272
 | 
   265  | 
      
  | 
| 
alpar@1273
 | 
   266  | 
      Value const_comp;
  | 
| 
alpar@1272
 | 
   267  | 
  public:
  | 
| 
alpar@1272
 | 
   268  | 
      typedef True IsLinExpression;
  | 
| 
alpar@1272
 | 
   269  | 
      ///\e
  | 
| 
alpar@1272
 | 
   270  | 
      Expr() : Base(), const_comp(0) { }
 | 
| 
alpar@1272
 | 
   271  | 
      ///\e
  | 
| 
alpar@1273
 | 
   272  | 
      Expr(const Key &v) : const_comp(0) {
 | 
| 
alpar@1272
 | 
   273  | 
	Base::insert(std::make_pair(v, 1));
  | 
| 
alpar@1272
 | 
   274  | 
      }
  | 
| 
alpar@1272
 | 
   275  | 
      ///\e
  | 
| 
alpar@1273
 | 
   276  | 
      Expr(const Value &v) : const_comp(v) {}
 | 
| 
alpar@1272
 | 
   277  | 
      ///\e
  | 
| 
alpar@1273
 | 
   278  | 
      void set(const Key &v,const Value &c) {
 | 
| 
alpar@1272
 | 
   279  | 
	Base::insert(std::make_pair(v, c));
  | 
| 
alpar@1272
 | 
   280  | 
      }
  | 
| 
alpar@1272
 | 
   281  | 
      ///\e
  | 
| 
alpar@1273
 | 
   282  | 
      Value &constComp() { return const_comp; }
 | 
| 
alpar@1272
 | 
   283  | 
      ///\e
  | 
| 
alpar@1273
 | 
   284  | 
      const Value &constComp() const { return const_comp; }
 | 
| 
alpar@1272
 | 
   285  | 
      
  | 
| 
alpar@1272
 | 
   286  | 
      ///Removes the components with zero coefficient.
  | 
| 
alpar@1272
 | 
   287  | 
      void simplify() {
 | 
| 
alpar@1272
 | 
   288  | 
	for (Base::iterator i=Base::begin(); i!=Base::end();) {
 | 
| 
alpar@1272
 | 
   289  | 
	  Base::iterator j=i;
  | 
| 
alpar@1272
 | 
   290  | 
	  ++j;
  | 
| 
alpar@1272
 | 
   291  | 
	  if ((*i).second==0) Base::erase(i);
  | 
| 
alpar@1272
 | 
   292  | 
	  j=i;
  | 
| 
alpar@1272
 | 
   293  | 
	}
  | 
| 
alpar@1272
 | 
   294  | 
      }
  | 
| 
alpar@1273
 | 
   295  | 
  | 
| 
alpar@1273
 | 
   296  | 
      ///Sets all coefficients and the constant component to 0.
  | 
| 
alpar@1273
 | 
   297  | 
      void clear() {
 | 
| 
alpar@1273
 | 
   298  | 
	Base::clear();
  | 
| 
alpar@1273
 | 
   299  | 
	const_comp=0;
  | 
| 
alpar@1273
 | 
   300  | 
      }
  | 
| 
alpar@1273
 | 
   301  | 
  | 
| 
alpar@1272
 | 
   302  | 
      ///\e
  | 
| 
alpar@1272
 | 
   303  | 
      Expr &operator+=(const Expr &e) {
 | 
| 
alpar@1272
 | 
   304  | 
	for (Base::const_iterator j=e.begin(); j!=e.end(); ++j)
  | 
| 
alpar@1272
 | 
   305  | 
	  (*this)[j->first]+=j->second;
  | 
| 
alpar@1272
 | 
   306  | 
	///\todo it might be speeded up using "hints"
  | 
| 
alpar@1272
 | 
   307  | 
	const_comp+=e.const_comp;
  | 
| 
alpar@1272
 | 
   308  | 
	return *this;
  | 
| 
alpar@1272
 | 
   309  | 
      }
  | 
| 
alpar@1272
 | 
   310  | 
      ///\e
  | 
| 
alpar@1272
 | 
   311  | 
      Expr &operator-=(const Expr &e) {
 | 
| 
alpar@1272
 | 
   312  | 
	for (Base::const_iterator j=e.begin(); j!=e.end(); ++j)
  | 
| 
alpar@1272
 | 
   313  | 
	  (*this)[j->first]-=j->second;
  | 
| 
alpar@1272
 | 
   314  | 
	const_comp-=e.const_comp;
  | 
| 
alpar@1272
 | 
   315  | 
	return *this;
  | 
| 
alpar@1272
 | 
   316  | 
      }
  | 
| 
alpar@1272
 | 
   317  | 
      ///\e
  | 
| 
alpar@1273
 | 
   318  | 
      Expr &operator*=(const Value &c) {
 | 
| 
alpar@1272
 | 
   319  | 
	for (Base::iterator j=Base::begin(); j!=Base::end(); ++j)
  | 
| 
alpar@1272
 | 
   320  | 
	  j->second*=c;
  | 
| 
alpar@1272
 | 
   321  | 
	const_comp*=c;
  | 
| 
alpar@1272
 | 
   322  | 
	return *this;
  | 
| 
alpar@1272
 | 
   323  | 
      }
  | 
| 
alpar@1272
 | 
   324  | 
      ///\e
  | 
| 
alpar@1273
 | 
   325  | 
      Expr &operator/=(const Value &c) {
 | 
| 
alpar@1272
 | 
   326  | 
	for (Base::iterator j=Base::begin(); j!=Base::end(); ++j)
  | 
| 
alpar@1272
 | 
   327  | 
	  j->second/=c;
  | 
| 
alpar@1272
 | 
   328  | 
	const_comp/=c;
  | 
| 
alpar@1272
 | 
   329  | 
	return *this;
  | 
| 
alpar@1272
 | 
   330  | 
      }
  | 
| 
alpar@1272
 | 
   331  | 
    };
  | 
| 
alpar@1272
 | 
   332  | 
    
  | 
| 
alpar@1264
 | 
   333  | 
    ///Linear constraint
  | 
| 
alpar@1328
 | 
   334  | 
  | 
| 
alpar@1364
 | 
   335  | 
    ///This data stucture represents a linear constraint in the LP.
  | 
| 
alpar@1364
 | 
   336  | 
    ///Basically it is a linear expression with a lower or an upper bound
  | 
| 
alpar@1364
 | 
   337  | 
    ///(or both). These parts of the constraint can be obtained by the member
  | 
| 
alpar@1364
 | 
   338  | 
    ///functions \ref expr(), \ref lowerBound() and \ref upperBound(),
  | 
| 
alpar@1364
 | 
   339  | 
    ///respectively.
  | 
| 
alpar@1364
 | 
   340  | 
    ///There are two ways to construct a constraint.
  | 
| 
alpar@1364
 | 
   341  | 
    ///- You can set the linear expression and the bounds directly
  | 
| 
alpar@1364
 | 
   342  | 
    ///  by the functions above.
  | 
| 
alpar@1364
 | 
   343  | 
    ///- The operators <tt>\<=</tt>, <tt>==</tt> and  <tt>\>=</tt>
  | 
| 
alpar@1364
 | 
   344  | 
    ///  are defined between expressions, or even between constraints whenever
  | 
| 
alpar@1364
 | 
   345  | 
    ///  it makes sense. Therefore if \c e and \c f are linear expressions and
  | 
| 
alpar@1364
 | 
   346  | 
    ///  \c s and \c t are numbers, then the followings are valid expressions
  | 
| 
alpar@1364
 | 
   347  | 
    ///  and thus they can be used directly e.g. in \ref addRow() whenever
  | 
| 
alpar@1364
 | 
   348  | 
    ///  it makes sense.
  | 
| 
alpar@1364
 | 
   349  | 
    ///  \code
  | 
| 
alpar@1364
 | 
   350  | 
    ///  e<=s
  | 
| 
alpar@1364
 | 
   351  | 
    ///  e<=f
  | 
| 
alpar@1364
 | 
   352  | 
    ///  s<=e<=t
  | 
| 
alpar@1364
 | 
   353  | 
    ///  e>=t
  | 
| 
alpar@1364
 | 
   354  | 
    ///  \endcode
  | 
| 
alpar@1364
 | 
   355  | 
    ///\warning The validity of a constraint is checked only at run time, so
  | 
| 
alpar@1364
 | 
   356  | 
    ///e.g. \ref addRow(<tt>x[1]\<=x[2]<=5</tt>) will compile, but will throw a
  | 
| 
alpar@1364
 | 
   357  | 
    ///\ref LogicError exception.
  | 
| 
alpar@1272
 | 
   358  | 
    class Constr
  | 
| 
alpar@1272
 | 
   359  | 
    {
 | 
| 
alpar@1272
 | 
   360  | 
    public:
  | 
| 
alpar@1272
 | 
   361  | 
      typedef LpSolverBase::Expr Expr;
  | 
| 
alpar@1273
 | 
   362  | 
      typedef Expr::Key Key;
  | 
| 
alpar@1273
 | 
   363  | 
      typedef Expr::Value Value;
  | 
| 
alpar@1272
 | 
   364  | 
      
  | 
| 
alpar@1364
 | 
   365  | 
//       static const Value INF;
  | 
| 
alpar@1364
 | 
   366  | 
//       static const Value NaN;
  | 
| 
alpar@1364
 | 
   367  | 
  | 
| 
alpar@1273
 | 
   368  | 
    protected:
  | 
| 
alpar@1273
 | 
   369  | 
      Expr _expr;
  | 
| 
alpar@1273
 | 
   370  | 
      Value _lb,_ub;
  | 
| 
alpar@1273
 | 
   371  | 
    public:
  | 
| 
alpar@1273
 | 
   372  | 
      ///\e
  | 
| 
alpar@1273
 | 
   373  | 
      Constr() : _expr(), _lb(NaN), _ub(NaN) {}
 | 
| 
alpar@1273
 | 
   374  | 
      ///\e
  | 
| 
alpar@1273
 | 
   375  | 
      Constr(Value lb,const Expr &e,Value ub) :
  | 
| 
alpar@1273
 | 
   376  | 
	_expr(e), _lb(lb), _ub(ub) {}
 | 
| 
alpar@1273
 | 
   377  | 
      ///\e
  | 
| 
alpar@1273
 | 
   378  | 
      Constr(const Expr &e,Value ub) : 
  | 
| 
alpar@1273
 | 
   379  | 
	_expr(e), _lb(NaN), _ub(ub) {}
 | 
| 
alpar@1273
 | 
   380  | 
      ///\e
  | 
| 
alpar@1273
 | 
   381  | 
      Constr(Value lb,const Expr &e) :
  | 
| 
alpar@1273
 | 
   382  | 
	_expr(e), _lb(lb), _ub(NaN) {}
 | 
| 
alpar@1273
 | 
   383  | 
      ///\e
  | 
| 
alpar@1272
 | 
   384  | 
      Constr(const Expr &e) : 
  | 
| 
alpar@1273
 | 
   385  | 
	_expr(e), _lb(NaN), _ub(NaN) {}
 | 
| 
alpar@1273
 | 
   386  | 
      ///\e
  | 
| 
alpar@1273
 | 
   387  | 
      void clear() 
  | 
| 
alpar@1273
 | 
   388  | 
      {
 | 
| 
alpar@1273
 | 
   389  | 
	_expr.clear();
  | 
| 
alpar@1273
 | 
   390  | 
	_lb=_ub=NaN;
  | 
| 
alpar@1273
 | 
   391  | 
      }
  | 
| 
alpar@1364
 | 
   392  | 
  | 
| 
alpar@1364
 | 
   393  | 
      ///Reference to the linear expression 
  | 
| 
alpar@1273
 | 
   394  | 
      Expr &expr() { return _expr; }
 | 
| 
alpar@1364
 | 
   395  | 
      ///Cont reference to the linear expression 
  | 
| 
alpar@1273
 | 
   396  | 
      const Expr &expr() const { return _expr; }
 | 
| 
alpar@1364
 | 
   397  | 
      ///Reference to the lower bound.
  | 
| 
alpar@1364
 | 
   398  | 
  | 
| 
alpar@1364
 | 
   399  | 
      ///\return
  | 
| 
alpar@1536
 | 
   400  | 
      ///- \ref INF "INF": the constraint is lower unbounded.
  | 
| 
alpar@1536
 | 
   401  | 
      ///- \ref NaN "NaN": lower bound has not been set.
  | 
| 
alpar@1364
 | 
   402  | 
      ///- finite number: the lower bound
  | 
| 
alpar@1273
 | 
   403  | 
      Value &lowerBound() { return _lb; }
 | 
| 
alpar@1364
 | 
   404  | 
      ///The const version of \ref lowerBound()
  | 
| 
alpar@1273
 | 
   405  | 
      const Value &lowerBound() const { return _lb; }
 | 
| 
alpar@1364
 | 
   406  | 
      ///Reference to the upper bound.
  | 
| 
alpar@1364
 | 
   407  | 
  | 
| 
alpar@1364
 | 
   408  | 
      ///\return
  | 
| 
alpar@1536
 | 
   409  | 
      ///- \ref INF "INF": the constraint is upper unbounded.
  | 
| 
alpar@1536
 | 
   410  | 
      ///- \ref NaN "NaN": upper bound has not been set.
  | 
| 
alpar@1364
 | 
   411  | 
      ///- finite number: the upper bound
  | 
| 
alpar@1273
 | 
   412  | 
      Value &upperBound() { return _ub; }
 | 
| 
alpar@1364
 | 
   413  | 
      ///The const version of \ref upperBound()
  | 
| 
alpar@1273
 | 
   414  | 
      const Value &upperBound() const { return _ub; }
 | 
| 
alpar@1364
 | 
   415  | 
      ///Is the constraint lower bounded?
  | 
| 
alpar@1295
 | 
   416  | 
      bool lowerBounded() const { 
 | 
| 
alpar@1295
 | 
   417  | 
	using namespace std;
  | 
| 
alpar@1397
 | 
   418  | 
	return finite(_lb);
  | 
| 
alpar@1295
 | 
   419  | 
      }
  | 
| 
alpar@1364
 | 
   420  | 
      ///Is the constraint upper bounded?
  | 
| 
alpar@1295
 | 
   421  | 
      bool upperBounded() const {
 | 
| 
alpar@1295
 | 
   422  | 
	using namespace std;
  | 
| 
alpar@1397
 | 
   423  | 
	return finite(_ub);
  | 
| 
alpar@1295
 | 
   424  | 
      }
  | 
| 
alpar@1272
 | 
   425  | 
    };
  | 
| 
alpar@1272
 | 
   426  | 
    
  | 
| 
alpar@1445
 | 
   427  | 
    ///Linear expression of rows
  | 
| 
alpar@1445
 | 
   428  | 
    
  | 
| 
alpar@1445
 | 
   429  | 
    ///This data structure represents a column of the matrix,
  | 
| 
alpar@1445
 | 
   430  | 
    ///thas is it strores a linear expression of the dual variables
  | 
| 
alpar@1445
 | 
   431  | 
    ///(\ref Row "Row"s).
  | 
| 
alpar@1445
 | 
   432  | 
    ///
  | 
| 
alpar@1445
 | 
   433  | 
    ///There are several ways to access and modify the contents of this
  | 
| 
alpar@1445
 | 
   434  | 
    ///container.
  | 
| 
alpar@1445
 | 
   435  | 
    ///- Its it fully compatible with \c std::map<Row,double>, so for expamle
  | 
| 
alpar@1445
 | 
   436  | 
    ///if \c e is an DualExpr and \c v
  | 
| 
alpar@1445
 | 
   437  | 
    ///and \c w are of type \ref Row, then you can
  | 
| 
alpar@1445
 | 
   438  | 
    ///read and modify the coefficients like
  | 
| 
alpar@1445
 | 
   439  | 
    ///these.
  | 
| 
alpar@1445
 | 
   440  | 
    ///\code
  | 
| 
alpar@1445
 | 
   441  | 
    ///e[v]=5;
  | 
| 
alpar@1445
 | 
   442  | 
    ///e[v]+=12;
  | 
| 
alpar@1445
 | 
   443  | 
    ///e.erase(v);
  | 
| 
alpar@1445
 | 
   444  | 
    ///\endcode
  | 
| 
alpar@1445
 | 
   445  | 
    ///or you can also iterate through its elements.
  | 
| 
alpar@1445
 | 
   446  | 
    ///\code
  | 
| 
alpar@1445
 | 
   447  | 
    ///double s=0;
  | 
| 
alpar@1445
 | 
   448  | 
    ///for(LpSolverBase::DualExpr::iterator i=e.begin();i!=e.end();++i)
  | 
| 
alpar@1445
 | 
   449  | 
    ///  s+=i->second;
  | 
| 
alpar@1445
 | 
   450  | 
    ///\endcode
  | 
| 
alpar@1445
 | 
   451  | 
    ///(This code computes the sum of all coefficients).
  | 
| 
alpar@1445
 | 
   452  | 
    ///- Numbers (<tt>double</tt>'s)
  | 
| 
alpar@1445
 | 
   453  | 
    ///and variables (\ref Row "Row"s) directly convert to an
  | 
| 
alpar@1445
 | 
   454  | 
    ///\ref DualExpr and the usual linear operations are defined so  
  | 
| 
alpar@1445
 | 
   455  | 
    ///\code
  | 
| 
alpar@1445
 | 
   456  | 
    ///v+w
  | 
| 
alpar@1445
 | 
   457  | 
    ///2*v-3.12*(v-w/2)
  | 
| 
alpar@1445
 | 
   458  | 
    ///v*2.1+(3*v+(v*12+w)*3)/2
  | 
| 
alpar@1445
 | 
   459  | 
    ///\endcode
  | 
| 
alpar@1445
 | 
   460  | 
    ///are valid \ref DualExpr "DualExpr"essions.
  | 
| 
alpar@1445
 | 
   461  | 
    ///The usual assignment operations are also defined.
  | 
| 
alpar@1445
 | 
   462  | 
    ///\code
  | 
| 
alpar@1445
 | 
   463  | 
    ///e=v+w;
  | 
| 
alpar@1445
 | 
   464  | 
    ///e+=2*v-3.12*(v-w/2);
  | 
| 
alpar@1445
 | 
   465  | 
    ///e*=3.4;
  | 
| 
alpar@1445
 | 
   466  | 
    ///e/=5;
  | 
| 
alpar@1445
 | 
   467  | 
    ///\endcode
  | 
| 
alpar@1445
 | 
   468  | 
    ///
  | 
| 
alpar@1445
 | 
   469  | 
    ///\sa Expr
  | 
| 
alpar@1445
 | 
   470  | 
    ///
  | 
| 
alpar@1445
 | 
   471  | 
    class DualExpr : public std::map<Row,Value>
  | 
| 
alpar@1445
 | 
   472  | 
    {
 | 
| 
alpar@1445
 | 
   473  | 
    public:
  | 
| 
alpar@1445
 | 
   474  | 
      typedef LpSolverBase::Row Key; 
  | 
| 
alpar@1445
 | 
   475  | 
      typedef LpSolverBase::Value Value;
  | 
| 
alpar@1445
 | 
   476  | 
      
  | 
| 
alpar@1445
 | 
   477  | 
    protected:
  | 
| 
alpar@1445
 | 
   478  | 
      typedef std::map<Row,Value> Base;
  | 
| 
alpar@1445
 | 
   479  | 
      
  | 
| 
alpar@1445
 | 
   480  | 
    public:
  | 
| 
alpar@1445
 | 
   481  | 
      typedef True IsLinExpression;
  | 
| 
alpar@1445
 | 
   482  | 
      ///\e
  | 
| 
alpar@1445
 | 
   483  | 
      DualExpr() : Base() { }
 | 
| 
alpar@1445
 | 
   484  | 
      ///\e
  | 
| 
alpar@1445
 | 
   485  | 
      DualExpr(const Key &v) {
 | 
| 
alpar@1445
 | 
   486  | 
	Base::insert(std::make_pair(v, 1));
  | 
| 
alpar@1445
 | 
   487  | 
      }
  | 
| 
alpar@1445
 | 
   488  | 
      ///\e
  | 
| 
alpar@1445
 | 
   489  | 
      void set(const Key &v,const Value &c) {
 | 
| 
alpar@1445
 | 
   490  | 
	Base::insert(std::make_pair(v, c));
  | 
| 
alpar@1445
 | 
   491  | 
      }
  | 
| 
alpar@1445
 | 
   492  | 
      
  | 
| 
alpar@1445
 | 
   493  | 
      ///Removes the components with zero coefficient.
  | 
| 
alpar@1445
 | 
   494  | 
      void simplify() {
 | 
| 
alpar@1445
 | 
   495  | 
	for (Base::iterator i=Base::begin(); i!=Base::end();) {
 | 
| 
alpar@1445
 | 
   496  | 
	  Base::iterator j=i;
  | 
| 
alpar@1445
 | 
   497  | 
	  ++j;
  | 
| 
alpar@1445
 | 
   498  | 
	  if ((*i).second==0) Base::erase(i);
  | 
| 
alpar@1445
 | 
   499  | 
	  j=i;
  | 
| 
alpar@1445
 | 
   500  | 
	}
  | 
| 
alpar@1445
 | 
   501  | 
      }
  | 
| 
alpar@1445
 | 
   502  | 
  | 
| 
alpar@1445
 | 
   503  | 
      ///Sets all coefficients to 0.
  | 
| 
alpar@1445
 | 
   504  | 
      void clear() {
 | 
| 
alpar@1445
 | 
   505  | 
	Base::clear();
  | 
| 
alpar@1445
 | 
   506  | 
      }
  | 
| 
alpar@1445
 | 
   507  | 
  | 
| 
alpar@1445
 | 
   508  | 
      ///\e
  | 
| 
alpar@1445
 | 
   509  | 
      DualExpr &operator+=(const DualExpr &e) {
 | 
| 
alpar@1445
 | 
   510  | 
	for (Base::const_iterator j=e.begin(); j!=e.end(); ++j)
  | 
| 
alpar@1445
 | 
   511  | 
	  (*this)[j->first]+=j->second;
  | 
| 
alpar@1445
 | 
   512  | 
	///\todo it might be speeded up using "hints"
  | 
| 
alpar@1445
 | 
   513  | 
	return *this;
  | 
| 
alpar@1445
 | 
   514  | 
      }
  | 
| 
alpar@1445
 | 
   515  | 
      ///\e
  | 
| 
alpar@1445
 | 
   516  | 
      DualExpr &operator-=(const DualExpr &e) {
 | 
| 
alpar@1445
 | 
   517  | 
	for (Base::const_iterator j=e.begin(); j!=e.end(); ++j)
  | 
| 
alpar@1445
 | 
   518  | 
	  (*this)[j->first]-=j->second;
  | 
| 
alpar@1445
 | 
   519  | 
	return *this;
  | 
| 
alpar@1445
 | 
   520  | 
      }
  | 
| 
alpar@1445
 | 
   521  | 
      ///\e
  | 
| 
alpar@1445
 | 
   522  | 
      DualExpr &operator*=(const Value &c) {
 | 
| 
alpar@1445
 | 
   523  | 
	for (Base::iterator j=Base::begin(); j!=Base::end(); ++j)
  | 
| 
alpar@1445
 | 
   524  | 
	  j->second*=c;
  | 
| 
alpar@1445
 | 
   525  | 
	return *this;
  | 
| 
alpar@1445
 | 
   526  | 
      }
  | 
| 
alpar@1445
 | 
   527  | 
      ///\e
  | 
| 
alpar@1445
 | 
   528  | 
      DualExpr &operator/=(const Value &c) {
 | 
| 
alpar@1445
 | 
   529  | 
	for (Base::iterator j=Base::begin(); j!=Base::end(); ++j)
  | 
| 
alpar@1445
 | 
   530  | 
	  j->second/=c;
  | 
| 
alpar@1445
 | 
   531  | 
	return *this;
  | 
| 
alpar@1445
 | 
   532  | 
      }
  | 
| 
alpar@1445
 | 
   533  | 
    };
  | 
| 
alpar@1445
 | 
   534  | 
    
  | 
| 
alpar@1253
 | 
   535  | 
  | 
| 
alpar@1253
 | 
   536  | 
  protected:
  | 
| 
alpar@1253
 | 
   537  | 
    _FixId rows;
  | 
| 
alpar@1253
 | 
   538  | 
    _FixId cols;
  | 
| 
athos@1246
 | 
   539  | 
  | 
| 
alpar@1323
 | 
   540  | 
    //Abstract virtual functions
  | 
| 
alpar@1364
 | 
   541  | 
    virtual LpSolverBase &_newLp() = 0;
  | 
| 
athos@1436
 | 
   542  | 
    virtual LpSolverBase &_copyLp(){
 | 
| 
athos@1436
 | 
   543  | 
      ///\todo This should be implemented here, too,  when we have problem retrieving routines. It can be overriden.
  | 
| 
athos@1436
 | 
   544  | 
  | 
| 
athos@1436
 | 
   545  | 
      //Starting:
  | 
| 
athos@1436
 | 
   546  | 
      LpSolverBase & newlp(_newLp());
  | 
| 
athos@1436
 | 
   547  | 
      return newlp;
  | 
| 
athos@1436
 | 
   548  | 
      //return *(LpSolverBase*)0;
  | 
| 
athos@1436
 | 
   549  | 
    };
  | 
| 
alpar@1364
 | 
   550  | 
  | 
| 
athos@1246
 | 
   551  | 
    virtual int _addCol() = 0;
  | 
| 
athos@1246
 | 
   552  | 
    virtual int _addRow() = 0;
  | 
| 
athos@1542
 | 
   553  | 
    virtual void _eraseCol(int col) = 0;
  | 
| 
athos@1542
 | 
   554  | 
    virtual void _eraseRow(int row) = 0;
  | 
| 
athos@1246
 | 
   555  | 
    virtual void _setRowCoeffs(int i, 
  | 
| 
athos@1251
 | 
   556  | 
			       int length,
  | 
| 
athos@1247
 | 
   557  | 
                               int  const * indices, 
  | 
| 
athos@1247
 | 
   558  | 
                               Value  const * values ) = 0;
  | 
| 
athos@1246
 | 
   559  | 
    virtual void _setColCoeffs(int i, 
  | 
| 
athos@1251
 | 
   560  | 
			       int length,
  | 
| 
athos@1247
 | 
   561  | 
                               int  const * indices, 
  | 
| 
athos@1247
 | 
   562  | 
                               Value  const * values ) = 0;
  | 
| 
athos@1431
 | 
   563  | 
    virtual void _setCoeff(int row, int col, Value value) = 0;
  | 
| 
alpar@1294
 | 
   564  | 
    virtual void _setColLowerBound(int i, Value value) = 0;
  | 
| 
alpar@1294
 | 
   565  | 
    virtual void _setColUpperBound(int i, Value value) = 0;
  | 
| 
athos@1405
 | 
   566  | 
//     virtual void _setRowLowerBound(int i, Value value) = 0;
  | 
| 
athos@1405
 | 
   567  | 
//     virtual void _setRowUpperBound(int i, Value value) = 0;
  | 
| 
athos@1379
 | 
   568  | 
    virtual void _setRowBounds(int i, Value lower, Value upper) = 0;
  | 
| 
alpar@1294
 | 
   569  | 
    virtual void _setObjCoeff(int i, Value obj_coef) = 0;
  | 
| 
athos@1377
 | 
   570  | 
    virtual void _clearObj()=0;
  | 
| 
athos@1377
 | 
   571  | 
//     virtual void _setObj(int length,
  | 
| 
athos@1377
 | 
   572  | 
//                          int  const * indices, 
  | 
| 
athos@1377
 | 
   573  | 
//                          Value  const * values ) = 0;
  | 
| 
alpar@1303
 | 
   574  | 
    virtual SolveExitStatus _solve() = 0;
  | 
| 
alpar@1294
 | 
   575  | 
    virtual Value _getPrimal(int i) = 0;
  | 
| 
alpar@1312
 | 
   576  | 
    virtual Value _getPrimalValue() = 0;
  | 
| 
alpar@1312
 | 
   577  | 
    virtual SolutionStatus _getPrimalStatus() = 0;
  | 
| 
athos@1460
 | 
   578  | 
    virtual SolutionStatus _getDualStatus() = 0;
  | 
| 
athos@1460
 | 
   579  | 
    ///\todo This could be implemented here, too, using _getPrimalStatus() and
  | 
| 
athos@1460
 | 
   580  | 
    ///_getDualStatus()
  | 
| 
athos@1460
 | 
   581  | 
    virtual ProblemTypes _getProblemType() = 0;
  | 
| 
athos@1460
 | 
   582  | 
  | 
| 
alpar@1312
 | 
   583  | 
    virtual void _setMax() = 0;
  | 
| 
alpar@1312
 | 
   584  | 
    virtual void _setMin() = 0;
  | 
| 
alpar@1312
 | 
   585  | 
    
  | 
| 
alpar@1323
 | 
   586  | 
    //Own protected stuff
  | 
| 
alpar@1323
 | 
   587  | 
    
  | 
| 
alpar@1323
 | 
   588  | 
    //Constant component of the objective function
  | 
| 
alpar@1323
 | 
   589  | 
    Value obj_const_comp;
  | 
| 
alpar@1323
 | 
   590  | 
    
  | 
| 
athos@1377
 | 
   591  | 
  | 
| 
athos@1377
 | 
   592  | 
  | 
| 
alpar@1323
 | 
   593  | 
    
  | 
| 
alpar@1253
 | 
   594  | 
  public:
  | 
| 
alpar@1253
 | 
   595  | 
  | 
| 
alpar@1323
 | 
   596  | 
    ///\e
  | 
| 
alpar@1323
 | 
   597  | 
    LpSolverBase() : obj_const_comp(0) {}
 | 
| 
alpar@1253
 | 
   598  | 
  | 
| 
alpar@1253
 | 
   599  | 
    ///\e
  | 
| 
alpar@1253
 | 
   600  | 
    virtual ~LpSolverBase() {}
 | 
| 
alpar@1253
 | 
   601  | 
  | 
| 
alpar@1364
 | 
   602  | 
    ///Creates a new LP problem
  | 
| 
alpar@1364
 | 
   603  | 
    LpSolverBase &newLp() {return _newLp();}
 | 
| 
alpar@1381
 | 
   604  | 
    ///Makes a copy of the LP problem
  | 
| 
alpar@1364
 | 
   605  | 
    LpSolverBase ©Lp() {return _copyLp();}
 | 
| 
alpar@1364
 | 
   606  | 
    
  | 
| 
alpar@1612
 | 
   607  | 
    ///\name Build up and modify the LP
  | 
| 
alpar@1263
 | 
   608  | 
  | 
| 
alpar@1263
 | 
   609  | 
    ///@{
 | 
| 
alpar@1263
 | 
   610  | 
  | 
| 
alpar@1253
 | 
   611  | 
    ///Add a new empty column (i.e a new variable) to the LP
  | 
| 
alpar@1253
 | 
   612  | 
    Col addCol() { Col c; c.id=cols.insert(_addCol()); return c;}
 | 
| 
alpar@1263
 | 
   613  | 
  | 
| 
alpar@1294
 | 
   614  | 
    ///\brief Adds several new columns
  | 
| 
alpar@1294
 | 
   615  | 
    ///(i.e a variables) at once
  | 
| 
alpar@1256
 | 
   616  | 
    ///
  | 
| 
alpar@1273
 | 
   617  | 
    ///This magic function takes a container as its argument
  | 
| 
alpar@1256
 | 
   618  | 
    ///and fills its elements
  | 
| 
alpar@1256
 | 
   619  | 
    ///with new columns (i.e. variables)
  | 
| 
alpar@1273
 | 
   620  | 
    ///\param t can be
  | 
| 
alpar@1273
 | 
   621  | 
    ///- a standard STL compatible iterable container with
  | 
| 
alpar@1273
 | 
   622  | 
    ///\ref Col as its \c values_type
  | 
| 
alpar@1273
 | 
   623  | 
    ///like
  | 
| 
alpar@1273
 | 
   624  | 
    ///\code
  | 
| 
alpar@1273
 | 
   625  | 
    ///std::vector<LpSolverBase::Col>
  | 
| 
alpar@1273
 | 
   626  | 
    ///std::list<LpSolverBase::Col>
  | 
| 
alpar@1273
 | 
   627  | 
    ///\endcode
  | 
| 
alpar@1273
 | 
   628  | 
    ///- a standard STL compatible iterable container with
  | 
| 
alpar@1273
 | 
   629  | 
    ///\ref Col as its \c mapped_type
  | 
| 
alpar@1273
 | 
   630  | 
    ///like
  | 
| 
alpar@1273
 | 
   631  | 
    ///\code
  | 
| 
alpar@1364
 | 
   632  | 
    ///std::map<AnyType,LpSolverBase::Col>
  | 
| 
alpar@1273
 | 
   633  | 
    ///\endcode
  | 
| 
alpar@1273
 | 
   634  | 
    ///- an iterable lemon \ref concept::WriteMap "write map" like 
  | 
| 
alpar@1273
 | 
   635  | 
    ///\code
  | 
| 
alpar@1273
 | 
   636  | 
    ///ListGraph::NodeMap<LpSolverBase::Col>
  | 
| 
alpar@1273
 | 
   637  | 
    ///ListGraph::EdgeMap<LpSolverBase::Col>
  | 
| 
alpar@1273
 | 
   638  | 
    ///\endcode
  | 
| 
alpar@1256
 | 
   639  | 
    ///\return The number of the created column.
  | 
| 
alpar@1256
 | 
   640  | 
#ifdef DOXYGEN
  | 
| 
alpar@1256
 | 
   641  | 
    template<class T>
  | 
| 
alpar@1256
 | 
   642  | 
    int addColSet(T &t) { return 0;} 
 | 
| 
alpar@1256
 | 
   643  | 
#else
  | 
| 
alpar@1256
 | 
   644  | 
    template<class T>
  | 
| 
alpar@1256
 | 
   645  | 
    typename enable_if<typename T::value_type::LpSolverCol,int>::type
  | 
| 
alpar@1256
 | 
   646  | 
    addColSet(T &t,dummy<0> = 0) {
 | 
| 
alpar@1256
 | 
   647  | 
      int s=0;
  | 
| 
alpar@1256
 | 
   648  | 
      for(typename T::iterator i=t.begin();i!=t.end();++i) {*i=addCol();s++;}
 | 
| 
alpar@1256
 | 
   649  | 
      return s;
  | 
| 
alpar@1256
 | 
   650  | 
    }
  | 
| 
alpar@1256
 | 
   651  | 
    template<class T>
  | 
| 
alpar@1256
 | 
   652  | 
    typename enable_if<typename T::value_type::second_type::LpSolverCol,
  | 
| 
alpar@1256
 | 
   653  | 
		       int>::type
  | 
| 
alpar@1256
 | 
   654  | 
    addColSet(T &t,dummy<1> = 1) { 
 | 
| 
alpar@1256
 | 
   655  | 
      int s=0;
  | 
| 
alpar@1256
 | 
   656  | 
      for(typename T::iterator i=t.begin();i!=t.end();++i) {
 | 
| 
alpar@1256
 | 
   657  | 
	i->second=addCol();
  | 
| 
alpar@1256
 | 
   658  | 
	s++;
  | 
| 
alpar@1256
 | 
   659  | 
      }
  | 
| 
alpar@1256
 | 
   660  | 
      return s;
  | 
| 
alpar@1256
 | 
   661  | 
    }
  | 
| 
alpar@1272
 | 
   662  | 
    template<class T>
  | 
| 
alpar@1272
 | 
   663  | 
    typename enable_if<typename T::ValueSet::value_type::LpSolverCol,
  | 
| 
alpar@1272
 | 
   664  | 
		       int>::type
  | 
| 
alpar@1272
 | 
   665  | 
    addColSet(T &t,dummy<2> = 2) { 
 | 
| 
alpar@1272
 | 
   666  | 
      ///\bug <tt>return addColSet(t.valueSet());</tt> should also work.
  | 
| 
alpar@1272
 | 
   667  | 
      int s=0;
  | 
| 
alpar@1272
 | 
   668  | 
      for(typename T::ValueSet::iterator i=t.valueSet().begin();
  | 
| 
alpar@1272
 | 
   669  | 
	  i!=t.valueSet().end();
  | 
| 
alpar@1272
 | 
   670  | 
	  ++i)
  | 
| 
alpar@1272
 | 
   671  | 
	{
 | 
| 
alpar@1272
 | 
   672  | 
	  *i=addCol();
  | 
| 
alpar@1272
 | 
   673  | 
	  s++;
  | 
| 
alpar@1272
 | 
   674  | 
	}
  | 
| 
alpar@1272
 | 
   675  | 
      return s;
  | 
| 
alpar@1272
 | 
   676  | 
    }
  | 
| 
alpar@1256
 | 
   677  | 
#endif
  | 
| 
alpar@1263
 | 
   678  | 
  | 
| 
alpar@1445
 | 
   679  | 
    ///Set a column (i.e a dual constraint) of the LP
  | 
| 
alpar@1258
 | 
   680  | 
  | 
| 
alpar@1445
 | 
   681  | 
    ///\param c is the column to be modified
  | 
| 
alpar@1445
 | 
   682  | 
    ///\param e is a dual linear expression (see \ref DualExpr)
  | 
| 
athos@1542
 | 
   683  | 
    ///\bug This is a temporary function. The interface will change to
  | 
| 
alpar@1445
 | 
   684  | 
    ///a better one.
  | 
| 
alpar@1445
 | 
   685  | 
    void setCol(Col c,const DualExpr &e) {
 | 
| 
alpar@1445
 | 
   686  | 
      std::vector<int> indices;
  | 
| 
alpar@1445
 | 
   687  | 
      std::vector<Value> values;
  | 
| 
alpar@1445
 | 
   688  | 
      indices.push_back(0);
  | 
| 
alpar@1445
 | 
   689  | 
      values.push_back(0);
  | 
| 
alpar@1445
 | 
   690  | 
      for(DualExpr::const_iterator i=e.begin(); i!=e.end(); ++i)
  | 
| 
alpar@1445
 | 
   691  | 
	if((*i).second!=0) { ///\bug EPSILON would be necessary here!!!
 | 
| 
alpar@1445
 | 
   692  | 
	  indices.push_back(cols.floatingId((*i).first.id));
  | 
| 
alpar@1445
 | 
   693  | 
	  values.push_back((*i).second);
  | 
| 
alpar@1445
 | 
   694  | 
	}
  | 
| 
alpar@1445
 | 
   695  | 
      _setColCoeffs(cols.floatingId(c.id),indices.size()-1,
  | 
| 
alpar@1445
 | 
   696  | 
		    &indices[0],&values[0]);
  | 
| 
alpar@1445
 | 
   697  | 
    }
  | 
| 
alpar@1445
 | 
   698  | 
  | 
| 
alpar@1445
 | 
   699  | 
    ///Add a new column to the LP
  | 
| 
alpar@1445
 | 
   700  | 
  | 
| 
alpar@1445
 | 
   701  | 
    ///\param e is a dual linear expression (see \ref DualExpr)
  | 
| 
alpar@1445
 | 
   702  | 
    ///\param obj is the corresponding component of the objective
  | 
| 
alpar@1445
 | 
   703  | 
    ///function. It is 0 by default.
  | 
| 
alpar@1445
 | 
   704  | 
    ///\return The created column.
  | 
| 
alpar@1445
 | 
   705  | 
    ///\bug This is a temportary function. The interface will change to
  | 
| 
alpar@1445
 | 
   706  | 
    ///a better one.
  | 
| 
alpar@1493
 | 
   707  | 
    Col addCol(const DualExpr &e, Value obj=0) {
 | 
| 
alpar@1445
 | 
   708  | 
      Col c=addCol();
  | 
| 
alpar@1445
 | 
   709  | 
      setCol(c,e);
  | 
| 
alpar@1493
 | 
   710  | 
      objCoeff(c,obj);
  | 
| 
alpar@1445
 | 
   711  | 
      return c;
  | 
| 
alpar@1445
 | 
   712  | 
    }
  | 
| 
alpar@1445
 | 
   713  | 
  | 
| 
alpar@1445
 | 
   714  | 
    ///Add a new empty row (i.e a new constraint) to the LP
  | 
| 
alpar@1445
 | 
   715  | 
  | 
| 
alpar@1445
 | 
   716  | 
    ///This function adds a new empty row (i.e a new constraint) to the LP.
  | 
| 
alpar@1258
 | 
   717  | 
    ///\return The created row
  | 
| 
alpar@1253
 | 
   718  | 
    Row addRow() { Row r; r.id=rows.insert(_addRow()); return r;}
 | 
| 
alpar@1253
 | 
   719  | 
  | 
| 
athos@1542
 | 
   720  | 
    ///\brief Add several new rows
  | 
| 
athos@1542
 | 
   721  | 
    ///(i.e a constraints) at once
  | 
| 
alpar@1445
 | 
   722  | 
    ///
  | 
| 
alpar@1445
 | 
   723  | 
    ///This magic function takes a container as its argument
  | 
| 
alpar@1445
 | 
   724  | 
    ///and fills its elements
  | 
| 
alpar@1445
 | 
   725  | 
    ///with new row (i.e. variables)
  | 
| 
alpar@1445
 | 
   726  | 
    ///\param t can be
  | 
| 
alpar@1445
 | 
   727  | 
    ///- a standard STL compatible iterable container with
  | 
| 
alpar@1445
 | 
   728  | 
    ///\ref Row as its \c values_type
  | 
| 
alpar@1445
 | 
   729  | 
    ///like
  | 
| 
alpar@1445
 | 
   730  | 
    ///\code
  | 
| 
alpar@1445
 | 
   731  | 
    ///std::vector<LpSolverBase::Row>
  | 
| 
alpar@1445
 | 
   732  | 
    ///std::list<LpSolverBase::Row>
  | 
| 
alpar@1445
 | 
   733  | 
    ///\endcode
  | 
| 
alpar@1445
 | 
   734  | 
    ///- a standard STL compatible iterable container with
  | 
| 
alpar@1445
 | 
   735  | 
    ///\ref Row as its \c mapped_type
  | 
| 
alpar@1445
 | 
   736  | 
    ///like
  | 
| 
alpar@1445
 | 
   737  | 
    ///\code
  | 
| 
alpar@1445
 | 
   738  | 
    ///std::map<AnyType,LpSolverBase::Row>
  | 
| 
alpar@1445
 | 
   739  | 
    ///\endcode
  | 
| 
alpar@1445
 | 
   740  | 
    ///- an iterable lemon \ref concept::WriteMap "write map" like 
  | 
| 
alpar@1445
 | 
   741  | 
    ///\code
  | 
| 
alpar@1445
 | 
   742  | 
    ///ListGraph::NodeMap<LpSolverBase::Row>
  | 
| 
alpar@1445
 | 
   743  | 
    ///ListGraph::EdgeMap<LpSolverBase::Row>
  | 
| 
alpar@1445
 | 
   744  | 
    ///\endcode
  | 
| 
alpar@1445
 | 
   745  | 
    ///\return The number of rows created.
  | 
| 
alpar@1445
 | 
   746  | 
#ifdef DOXYGEN
  | 
| 
alpar@1445
 | 
   747  | 
    template<class T>
  | 
| 
alpar@1445
 | 
   748  | 
    int addRowSet(T &t) { return 0;} 
 | 
| 
alpar@1445
 | 
   749  | 
#else
  | 
| 
alpar@1445
 | 
   750  | 
    template<class T>
  | 
| 
alpar@1445
 | 
   751  | 
    typename enable_if<typename T::value_type::LpSolverRow,int>::type
  | 
| 
alpar@1445
 | 
   752  | 
    addRowSet(T &t,dummy<0> = 0) {
 | 
| 
alpar@1445
 | 
   753  | 
      int s=0;
  | 
| 
alpar@1445
 | 
   754  | 
      for(typename T::iterator i=t.begin();i!=t.end();++i) {*i=addRow();s++;}
 | 
| 
alpar@1445
 | 
   755  | 
      return s;
  | 
| 
alpar@1445
 | 
   756  | 
    }
  | 
| 
alpar@1445
 | 
   757  | 
    template<class T>
  | 
| 
alpar@1445
 | 
   758  | 
    typename enable_if<typename T::value_type::second_type::LpSolverRow,
  | 
| 
alpar@1445
 | 
   759  | 
		       int>::type
  | 
| 
alpar@1445
 | 
   760  | 
    addRowSet(T &t,dummy<1> = 1) { 
 | 
| 
alpar@1445
 | 
   761  | 
      int s=0;
  | 
| 
alpar@1445
 | 
   762  | 
      for(typename T::iterator i=t.begin();i!=t.end();++i) {
 | 
| 
alpar@1445
 | 
   763  | 
	i->second=addRow();
  | 
| 
alpar@1445
 | 
   764  | 
	s++;
  | 
| 
alpar@1445
 | 
   765  | 
      }
  | 
| 
alpar@1445
 | 
   766  | 
      return s;
  | 
| 
alpar@1445
 | 
   767  | 
    }
  | 
| 
alpar@1445
 | 
   768  | 
    template<class T>
  | 
| 
alpar@1445
 | 
   769  | 
    typename enable_if<typename T::ValueSet::value_type::LpSolverRow,
  | 
| 
alpar@1445
 | 
   770  | 
		       int>::type
  | 
| 
alpar@1445
 | 
   771  | 
    addRowSet(T &t,dummy<2> = 2) { 
 | 
| 
alpar@1445
 | 
   772  | 
      ///\bug <tt>return addRowSet(t.valueSet());</tt> should also work.
  | 
| 
alpar@1445
 | 
   773  | 
      int s=0;
  | 
| 
alpar@1445
 | 
   774  | 
      for(typename T::ValueSet::iterator i=t.valueSet().begin();
  | 
| 
alpar@1445
 | 
   775  | 
	  i!=t.valueSet().end();
  | 
| 
alpar@1445
 | 
   776  | 
	  ++i)
  | 
| 
alpar@1445
 | 
   777  | 
	{
 | 
| 
alpar@1445
 | 
   778  | 
	  *i=addRow();
  | 
| 
alpar@1445
 | 
   779  | 
	  s++;
  | 
| 
alpar@1445
 | 
   780  | 
	}
  | 
| 
alpar@1445
 | 
   781  | 
      return s;
  | 
| 
alpar@1445
 | 
   782  | 
    }
  | 
| 
alpar@1445
 | 
   783  | 
#endif
  | 
| 
alpar@1445
 | 
   784  | 
  | 
| 
alpar@1445
 | 
   785  | 
    ///Set a row (i.e a constraint) of the LP
  | 
| 
alpar@1253
 | 
   786  | 
  | 
| 
alpar@1258
 | 
   787  | 
    ///\param r is the row to be modified
  | 
| 
alpar@1259
 | 
   788  | 
    ///\param l is lower bound (-\ref INF means no bound)
  | 
| 
alpar@1258
 | 
   789  | 
    ///\param e is a linear expression (see \ref Expr)
  | 
| 
alpar@1259
 | 
   790  | 
    ///\param u is the upper bound (\ref INF means no bound)
  | 
| 
alpar@1253
 | 
   791  | 
    ///\bug This is a temportary function. The interface will change to
  | 
| 
alpar@1253
 | 
   792  | 
    ///a better one.
  | 
| 
alpar@1328
 | 
   793  | 
    ///\todo Option to control whether a constraint with a single variable is
  | 
| 
alpar@1328
 | 
   794  | 
    ///added or not.
  | 
| 
alpar@1258
 | 
   795  | 
    void setRow(Row r, Value l,const Expr &e, Value u) {
 | 
| 
alpar@1253
 | 
   796  | 
      std::vector<int> indices;
  | 
| 
alpar@1253
 | 
   797  | 
      std::vector<Value> values;
  | 
| 
alpar@1253
 | 
   798  | 
      indices.push_back(0);
  | 
| 
alpar@1253
 | 
   799  | 
      values.push_back(0);
  | 
| 
alpar@1258
 | 
   800  | 
      for(Expr::const_iterator i=e.begin(); i!=e.end(); ++i)
  | 
| 
alpar@1256
 | 
   801  | 
	if((*i).second!=0) { ///\bug EPSILON would be necessary here!!!
 | 
| 
alpar@1256
 | 
   802  | 
	  indices.push_back(cols.floatingId((*i).first.id));
  | 
| 
alpar@1256
 | 
   803  | 
	  values.push_back((*i).second);
  | 
| 
alpar@1256
 | 
   804  | 
	}
  | 
| 
alpar@1253
 | 
   805  | 
      _setRowCoeffs(rows.floatingId(r.id),indices.size()-1,
  | 
| 
alpar@1253
 | 
   806  | 
		    &indices[0],&values[0]);
  | 
| 
athos@1405
 | 
   807  | 
//       _setRowLowerBound(rows.floatingId(r.id),l-e.constComp());
  | 
| 
athos@1405
 | 
   808  | 
//       _setRowUpperBound(rows.floatingId(r.id),u-e.constComp());
  | 
| 
athos@1405
 | 
   809  | 
       _setRowBounds(rows.floatingId(r.id),l-e.constComp(),u-e.constComp());
  | 
| 
alpar@1258
 | 
   810  | 
    }
  | 
| 
alpar@1258
 | 
   811  | 
  | 
| 
alpar@1445
 | 
   812  | 
    ///Set a row (i.e a constraint) of the LP
  | 
| 
alpar@1264
 | 
   813  | 
  | 
| 
alpar@1264
 | 
   814  | 
    ///\param r is the row to be modified
  | 
| 
alpar@1264
 | 
   815  | 
    ///\param c is a linear expression (see \ref Constr)
  | 
| 
alpar@1264
 | 
   816  | 
    void setRow(Row r, const Constr &c) {
 | 
| 
alpar@1273
 | 
   817  | 
      setRow(r,
  | 
| 
alpar@1275
 | 
   818  | 
	     c.lowerBounded()?c.lowerBound():-INF,
  | 
| 
alpar@1273
 | 
   819  | 
	     c.expr(),
  | 
| 
alpar@1275
 | 
   820  | 
	     c.upperBounded()?c.upperBound():INF);
  | 
| 
alpar@1264
 | 
   821  | 
    }
  | 
| 
alpar@1264
 | 
   822  | 
  | 
| 
alpar@1445
 | 
   823  | 
    ///Add a new row (i.e a new constraint) to the LP
  | 
| 
alpar@1258
 | 
   824  | 
  | 
| 
alpar@1259
 | 
   825  | 
    ///\param l is the lower bound (-\ref INF means no bound)
  | 
| 
alpar@1258
 | 
   826  | 
    ///\param e is a linear expression (see \ref Expr)
  | 
| 
alpar@1259
 | 
   827  | 
    ///\param u is the upper bound (\ref INF means no bound)
  | 
| 
alpar@1258
 | 
   828  | 
    ///\return The created row.
  | 
| 
alpar@1258
 | 
   829  | 
    ///\bug This is a temportary function. The interface will change to
  | 
| 
alpar@1258
 | 
   830  | 
    ///a better one.
  | 
| 
alpar@1258
 | 
   831  | 
    Row addRow(Value l,const Expr &e, Value u) {
 | 
| 
alpar@1258
 | 
   832  | 
      Row r=addRow();
  | 
| 
alpar@1258
 | 
   833  | 
      setRow(r,l,e,u);
  | 
| 
alpar@1253
 | 
   834  | 
      return r;
  | 
| 
alpar@1253
 | 
   835  | 
    }
  | 
| 
alpar@1253
 | 
   836  | 
  | 
| 
alpar@1445
 | 
   837  | 
    ///Add a new row (i.e a new constraint) to the LP
  | 
| 
alpar@1264
 | 
   838  | 
  | 
| 
alpar@1264
 | 
   839  | 
    ///\param c is a linear expression (see \ref Constr)
  | 
| 
alpar@1264
 | 
   840  | 
    ///\return The created row.
  | 
| 
alpar@1264
 | 
   841  | 
    Row addRow(const Constr &c) {
 | 
| 
alpar@1264
 | 
   842  | 
      Row r=addRow();
  | 
| 
alpar@1264
 | 
   843  | 
      setRow(r,c);
  | 
| 
alpar@1264
 | 
   844  | 
      return r;
  | 
| 
alpar@1264
 | 
   845  | 
    }
  | 
| 
athos@1542
 | 
   846  | 
    ///Erase a coloumn (i.e a variable) from the LP
  | 
| 
athos@1542
 | 
   847  | 
  | 
| 
athos@1542
 | 
   848  | 
    ///\param c is the coloumn to be deleted
  | 
| 
athos@1542
 | 
   849  | 
    ///\todo Please check this
  | 
| 
athos@1542
 | 
   850  | 
    void eraseCol(Col c) {
 | 
| 
athos@1542
 | 
   851  | 
      _eraseCol(cols.floatingId(c.id));
  | 
| 
athos@1542
 | 
   852  | 
      cols.erase(c.id);
  | 
| 
athos@1542
 | 
   853  | 
    }
  | 
| 
athos@1542
 | 
   854  | 
    ///Erase a  row (i.e a constraint) from the LP
  | 
| 
athos@1542
 | 
   855  | 
  | 
| 
athos@1542
 | 
   856  | 
    ///\param r is the row to be deleted
  | 
| 
athos@1542
 | 
   857  | 
    ///\todo Please check this
  | 
| 
athos@1542
 | 
   858  | 
    void eraseRow(Row r) {
 | 
| 
athos@1542
 | 
   859  | 
      _eraseRow(rows.floatingId(r.id));
  | 
| 
athos@1542
 | 
   860  | 
      rows.erase(r.id);
  | 
| 
athos@1542
 | 
   861  | 
    }
  | 
| 
alpar@1264
 | 
   862  | 
  | 
| 
athos@1436
 | 
   863  | 
    ///Set an element of the coefficient matrix of the LP
  | 
| 
athos@1436
 | 
   864  | 
  | 
| 
athos@1436
 | 
   865  | 
    ///\param r is the row of the element to be modified
  | 
| 
athos@1436
 | 
   866  | 
    ///\param c is the coloumn of the element to be modified
  | 
| 
athos@1436
 | 
   867  | 
    ///\param val is the new value of the coefficient
  | 
| 
athos@1436
 | 
   868  | 
    void setCoeff(Row r, Col c, Value val){
 | 
| 
athos@1436
 | 
   869  | 
      _setCoeff(rows.floatingId(r.id),cols.floatingId(c.id), val);
  | 
| 
athos@1436
 | 
   870  | 
    }
  | 
| 
athos@1436
 | 
   871  | 
  | 
| 
alpar@1253
 | 
   872  | 
    /// Set the lower bound of a column (i.e a variable)
  | 
| 
alpar@1253
 | 
   873  | 
  | 
| 
alpar@1293
 | 
   874  | 
    /// The upper bound of a variable (column) has to be given by an 
  | 
| 
alpar@1253
 | 
   875  | 
    /// extended number of type Value, i.e. a finite number of type 
  | 
| 
alpar@1259
 | 
   876  | 
    /// Value or -\ref INF.
  | 
| 
alpar@1293
 | 
   877  | 
    void colLowerBound(Col c, Value value) {
 | 
| 
alpar@1253
 | 
   878  | 
      _setColLowerBound(cols.floatingId(c.id),value);
  | 
| 
alpar@1253
 | 
   879  | 
    }
  | 
| 
alpar@1253
 | 
   880  | 
    /// Set the upper bound of a column (i.e a variable)
  | 
| 
alpar@1253
 | 
   881  | 
  | 
| 
alpar@1293
 | 
   882  | 
    /// The upper bound of a variable (column) has to be given by an 
  | 
| 
alpar@1253
 | 
   883  | 
    /// extended number of type Value, i.e. a finite number of type 
  | 
| 
alpar@1259
 | 
   884  | 
    /// Value or \ref INF.
  | 
| 
alpar@1293
 | 
   885  | 
    void colUpperBound(Col c, Value value) {
 | 
| 
alpar@1253
 | 
   886  | 
      _setColUpperBound(cols.floatingId(c.id),value);
  | 
| 
alpar@1253
 | 
   887  | 
    };
  | 
| 
alpar@1293
 | 
   888  | 
    /// Set the lower and the upper bounds of a column (i.e a variable)
  | 
| 
alpar@1293
 | 
   889  | 
  | 
| 
alpar@1293
 | 
   890  | 
    /// The lower and the upper bounds of
  | 
| 
alpar@1293
 | 
   891  | 
    /// a variable (column) have to be given by an 
  | 
| 
alpar@1293
 | 
   892  | 
    /// extended number of type Value, i.e. a finite number of type 
  | 
| 
alpar@1293
 | 
   893  | 
    /// Value, -\ref INF or \ref INF.
  | 
| 
alpar@1293
 | 
   894  | 
    void colBounds(Col c, Value lower, Value upper) {
 | 
| 
alpar@1293
 | 
   895  | 
      _setColLowerBound(cols.floatingId(c.id),lower);
  | 
| 
alpar@1293
 | 
   896  | 
      _setColUpperBound(cols.floatingId(c.id),upper);
  | 
| 
alpar@1293
 | 
   897  | 
    }
  | 
| 
alpar@1293
 | 
   898  | 
    
  | 
| 
athos@1405
 | 
   899  | 
//     /// Set the lower bound of a row (i.e a constraint)
  | 
| 
alpar@1253
 | 
   900  | 
  | 
| 
athos@1405
 | 
   901  | 
//     /// The lower bound of a linear expression (row) has to be given by an 
  | 
| 
athos@1405
 | 
   902  | 
//     /// extended number of type Value, i.e. a finite number of type 
  | 
| 
athos@1405
 | 
   903  | 
//     /// Value or -\ref INF.
  | 
| 
athos@1405
 | 
   904  | 
//     void rowLowerBound(Row r, Value value) {
 | 
| 
athos@1405
 | 
   905  | 
//       _setRowLowerBound(rows.floatingId(r.id),value);
  | 
| 
athos@1405
 | 
   906  | 
//     };
  | 
| 
athos@1405
 | 
   907  | 
//     /// Set the upper bound of a row (i.e a constraint)
  | 
| 
alpar@1253
 | 
   908  | 
  | 
| 
athos@1405
 | 
   909  | 
//     /// The upper bound of a linear expression (row) has to be given by an 
  | 
| 
athos@1405
 | 
   910  | 
//     /// extended number of type Value, i.e. a finite number of type 
  | 
| 
athos@1405
 | 
   911  | 
//     /// Value or \ref INF.
  | 
| 
athos@1405
 | 
   912  | 
//     void rowUpperBound(Row r, Value value) {
 | 
| 
athos@1405
 | 
   913  | 
//       _setRowUpperBound(rows.floatingId(r.id),value);
  | 
| 
athos@1405
 | 
   914  | 
//     };
  | 
| 
athos@1405
 | 
   915  | 
  | 
| 
athos@1405
 | 
   916  | 
    /// Set the lower and the upper bounds of a row (i.e a constraint)
  | 
| 
alpar@1293
 | 
   917  | 
  | 
| 
alpar@1293
 | 
   918  | 
    /// The lower and the upper bounds of
  | 
| 
alpar@1293
 | 
   919  | 
    /// a constraint (row) have to be given by an 
  | 
| 
alpar@1293
 | 
   920  | 
    /// extended number of type Value, i.e. a finite number of type 
  | 
| 
alpar@1293
 | 
   921  | 
    /// Value, -\ref INF or \ref INF.
  | 
| 
alpar@1293
 | 
   922  | 
    void rowBounds(Row c, Value lower, Value upper) {
 | 
| 
athos@1379
 | 
   923  | 
      _setRowBounds(rows.floatingId(c.id),lower, upper);
  | 
| 
athos@1379
 | 
   924  | 
      // _setRowUpperBound(rows.floatingId(c.id),upper);
  | 
| 
alpar@1293
 | 
   925  | 
    }
  | 
| 
alpar@1293
 | 
   926  | 
    
  | 
| 
alpar@1253
 | 
   927  | 
    ///Set an element of the objective function
  | 
| 
alpar@1293
 | 
   928  | 
    void objCoeff(Col c, Value v) {_setObjCoeff(cols.floatingId(c.id),v); };
 | 
| 
alpar@1253
 | 
   929  | 
    ///Set the objective function
  | 
| 
alpar@1253
 | 
   930  | 
    
  | 
| 
alpar@1253
 | 
   931  | 
    ///\param e is a linear expression of type \ref Expr.
  | 
| 
alpar@1323
 | 
   932  | 
    ///\bug The previous objective function is not cleared!
  | 
| 
alpar@1253
 | 
   933  | 
    void setObj(Expr e) {
 | 
| 
athos@1377
 | 
   934  | 
      _clearObj();
  | 
| 
alpar@1253
 | 
   935  | 
      for (Expr::iterator i=e.begin(); i!=e.end(); ++i)
  | 
| 
alpar@1293
 | 
   936  | 
	objCoeff((*i).first,(*i).second);
  | 
| 
alpar@1323
 | 
   937  | 
      obj_const_comp=e.constComp();
  | 
| 
alpar@1253
 | 
   938  | 
    }
  | 
| 
alpar@1263
 | 
   939  | 
  | 
| 
alpar@1312
 | 
   940  | 
    ///Maximize
  | 
| 
alpar@1312
 | 
   941  | 
    void max() { _setMax(); }
 | 
| 
alpar@1312
 | 
   942  | 
    ///Minimize
  | 
| 
alpar@1312
 | 
   943  | 
    void min() { _setMin(); }
 | 
| 
alpar@1312
 | 
   944  | 
  | 
| 
alpar@1312
 | 
   945  | 
    
  | 
| 
alpar@1263
 | 
   946  | 
    ///@}
  | 
| 
alpar@1263
 | 
   947  | 
  | 
| 
alpar@1263
 | 
   948  | 
  | 
| 
alpar@1294
 | 
   949  | 
    ///\name Solve the LP
  | 
| 
alpar@1263
 | 
   950  | 
  | 
| 
alpar@1263
 | 
   951  | 
    ///@{
 | 
| 
alpar@1263
 | 
   952  | 
  | 
| 
athos@1458
 | 
   953  | 
    ///\e Solve the LP problem at hand
  | 
| 
athos@1458
 | 
   954  | 
    ///
  | 
| 
athos@1458
 | 
   955  | 
    ///\return The result of the optimization procedure. Possible values and their meanings can be found in the documentation of \ref SolveExitStatus.
  | 
| 
athos@1458
 | 
   956  | 
    ///
  | 
| 
athos@1458
 | 
   957  | 
    ///\todo Which method is used to solve the problem
  | 
| 
alpar@1303
 | 
   958  | 
    SolveExitStatus solve() { return _solve(); }
 | 
| 
alpar@1263
 | 
   959  | 
    
  | 
| 
alpar@1263
 | 
   960  | 
    ///@}
  | 
| 
alpar@1263
 | 
   961  | 
    
  | 
| 
alpar@1294
 | 
   962  | 
    ///\name Obtain the solution
  | 
| 
alpar@1263
 | 
   963  | 
  | 
| 
alpar@1263
 | 
   964  | 
    ///@{
 | 
| 
alpar@1263
 | 
   965  | 
  | 
| 
athos@1460
 | 
   966  | 
    /// The status of the primal problem (the original LP problem)
  | 
| 
alpar@1312
 | 
   967  | 
    SolutionStatus primalStatus() {
 | 
| 
alpar@1312
 | 
   968  | 
      return _getPrimalStatus();
  | 
| 
alpar@1294
 | 
   969  | 
    }
  | 
| 
alpar@1294
 | 
   970  | 
  | 
| 
athos@1460
 | 
   971  | 
    /// The status of the dual (of the original LP) problem 
  | 
| 
athos@1460
 | 
   972  | 
    SolutionStatus dualStatus() {
 | 
| 
athos@1460
 | 
   973  | 
      return _getDualStatus();
  | 
| 
athos@1460
 | 
   974  | 
    }
  | 
| 
athos@1460
 | 
   975  | 
  | 
| 
athos@1460
 | 
   976  | 
    ///The type of the original LP problem
  | 
| 
athos@1462
 | 
   977  | 
    ProblemTypes problemType() {
 | 
| 
athos@1460
 | 
   978  | 
      return _getProblemType();
  | 
| 
athos@1460
 | 
   979  | 
    }
  | 
| 
athos@1460
 | 
   980  | 
  | 
| 
alpar@1294
 | 
   981  | 
    ///\e
  | 
| 
alpar@1293
 | 
   982  | 
    Value primal(Col c) { return _getPrimal(cols.floatingId(c.id)); }
 | 
| 
alpar@1263
 | 
   983  | 
  | 
| 
alpar@1312
 | 
   984  | 
    ///\e
  | 
| 
alpar@1312
 | 
   985  | 
  | 
| 
alpar@1312
 | 
   986  | 
    ///\return
  | 
| 
alpar@1312
 | 
   987  | 
    ///- \ref INF or -\ref INF means either infeasibility or unboundedness
  | 
| 
alpar@1312
 | 
   988  | 
    /// of the primal problem, depending on whether we minimize or maximize.
  | 
| 
alpar@1364
 | 
   989  | 
    ///- \ref NaN if no primal solution is found.
  | 
| 
alpar@1312
 | 
   990  | 
    ///- The (finite) objective value if an optimal solution is found.
  | 
| 
alpar@1323
 | 
   991  | 
    Value primalValue() { return _getPrimalValue()+obj_const_comp;}
 | 
| 
alpar@1263
 | 
   992  | 
    ///@}
  | 
| 
alpar@1253
 | 
   993  | 
    
  | 
| 
athos@1248
 | 
   994  | 
  };  
  | 
| 
athos@1246
 | 
   995  | 
  | 
| 
alpar@1272
 | 
   996  | 
  ///\e
  | 
| 
alpar@1272
 | 
   997  | 
  
  | 
| 
alpar@1272
 | 
   998  | 
  ///\relates LpSolverBase::Expr
  | 
| 
alpar@1272
 | 
   999  | 
  ///
  | 
| 
alpar@1272
 | 
  1000  | 
  inline LpSolverBase::Expr operator+(const LpSolverBase::Expr &a,
  | 
| 
alpar@1272
 | 
  1001  | 
				      const LpSolverBase::Expr &b) 
  | 
| 
alpar@1272
 | 
  1002  | 
  {
 | 
| 
alpar@1272
 | 
  1003  | 
    LpSolverBase::Expr tmp(a);
  | 
| 
alpar@1364
 | 
  1004  | 
    tmp+=b; ///\todo Doesn't STL have some special 'merge' algorithm?
  | 
| 
alpar@1272
 | 
  1005  | 
    return tmp;
  | 
| 
alpar@1272
 | 
  1006  | 
  }
  | 
| 
alpar@1272
 | 
  1007  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1008  | 
  
  | 
| 
alpar@1272
 | 
  1009  | 
  ///\relates LpSolverBase::Expr
  | 
| 
alpar@1272
 | 
  1010  | 
  ///
  | 
| 
alpar@1272
 | 
  1011  | 
  inline LpSolverBase::Expr operator-(const LpSolverBase::Expr &a,
  | 
| 
alpar@1272
 | 
  1012  | 
				      const LpSolverBase::Expr &b) 
  | 
| 
alpar@1272
 | 
  1013  | 
  {
 | 
| 
alpar@1272
 | 
  1014  | 
    LpSolverBase::Expr tmp(a);
  | 
| 
alpar@1364
 | 
  1015  | 
    tmp-=b; ///\todo Doesn't STL have some special 'merge' algorithm?
  | 
| 
alpar@1272
 | 
  1016  | 
    return tmp;
  | 
| 
alpar@1272
 | 
  1017  | 
  }
  | 
| 
alpar@1272
 | 
  1018  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1019  | 
  
  | 
| 
alpar@1272
 | 
  1020  | 
  ///\relates LpSolverBase::Expr
  | 
| 
alpar@1272
 | 
  1021  | 
  ///
  | 
| 
alpar@1272
 | 
  1022  | 
  inline LpSolverBase::Expr operator*(const LpSolverBase::Expr &a,
  | 
| 
alpar@1273
 | 
  1023  | 
				      const LpSolverBase::Value &b) 
  | 
| 
alpar@1272
 | 
  1024  | 
  {
 | 
| 
alpar@1272
 | 
  1025  | 
    LpSolverBase::Expr tmp(a);
  | 
| 
alpar@1364
 | 
  1026  | 
    tmp*=b; ///\todo Doesn't STL have some special 'merge' algorithm?
  | 
| 
alpar@1272
 | 
  1027  | 
    return tmp;
  | 
| 
alpar@1272
 | 
  1028  | 
  }
  | 
| 
alpar@1272
 | 
  1029  | 
  
  | 
| 
alpar@1272
 | 
  1030  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1031  | 
  
  | 
| 
alpar@1272
 | 
  1032  | 
  ///\relates LpSolverBase::Expr
  | 
| 
alpar@1272
 | 
  1033  | 
  ///
  | 
| 
alpar@1273
 | 
  1034  | 
  inline LpSolverBase::Expr operator*(const LpSolverBase::Value &a,
  | 
| 
alpar@1272
 | 
  1035  | 
				      const LpSolverBase::Expr &b) 
  | 
| 
alpar@1272
 | 
  1036  | 
  {
 | 
| 
alpar@1272
 | 
  1037  | 
    LpSolverBase::Expr tmp(b);
  | 
| 
alpar@1364
 | 
  1038  | 
    tmp*=a; ///\todo Doesn't STL have some special 'merge' algorithm?
  | 
| 
alpar@1272
 | 
  1039  | 
    return tmp;
  | 
| 
alpar@1272
 | 
  1040  | 
  }
  | 
| 
alpar@1272
 | 
  1041  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1042  | 
  
  | 
| 
alpar@1272
 | 
  1043  | 
  ///\relates LpSolverBase::Expr
  | 
| 
alpar@1272
 | 
  1044  | 
  ///
  | 
| 
alpar@1272
 | 
  1045  | 
  inline LpSolverBase::Expr operator/(const LpSolverBase::Expr &a,
  | 
| 
alpar@1273
 | 
  1046  | 
				      const LpSolverBase::Value &b) 
  | 
| 
alpar@1272
 | 
  1047  | 
  {
 | 
| 
alpar@1272
 | 
  1048  | 
    LpSolverBase::Expr tmp(a);
  | 
| 
alpar@1364
 | 
  1049  | 
    tmp/=b; ///\todo Doesn't STL have some special 'merge' algorithm?
  | 
| 
alpar@1272
 | 
  1050  | 
    return tmp;
  | 
| 
alpar@1272
 | 
  1051  | 
  }
  | 
| 
alpar@1272
 | 
  1052  | 
  
  | 
| 
alpar@1272
 | 
  1053  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1054  | 
  
  | 
| 
alpar@1272
 | 
  1055  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1056  | 
  ///
  | 
| 
alpar@1272
 | 
  1057  | 
  inline LpSolverBase::Constr operator<=(const LpSolverBase::Expr &e,
  | 
| 
alpar@1272
 | 
  1058  | 
					 const LpSolverBase::Expr &f) 
  | 
| 
alpar@1272
 | 
  1059  | 
  {
 | 
| 
alpar@1272
 | 
  1060  | 
    return LpSolverBase::Constr(-LpSolverBase::INF,e-f,0);
  | 
| 
alpar@1272
 | 
  1061  | 
  }
  | 
| 
alpar@1272
 | 
  1062  | 
  | 
| 
alpar@1272
 | 
  1063  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1064  | 
  
  | 
| 
alpar@1272
 | 
  1065  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1066  | 
  ///
  | 
| 
alpar@1273
 | 
  1067  | 
  inline LpSolverBase::Constr operator<=(const LpSolverBase::Value &e,
  | 
| 
alpar@1272
 | 
  1068  | 
					 const LpSolverBase::Expr &f) 
  | 
| 
alpar@1272
 | 
  1069  | 
  {
 | 
| 
alpar@1272
 | 
  1070  | 
    return LpSolverBase::Constr(e,f);
  | 
| 
alpar@1272
 | 
  1071  | 
  }
  | 
| 
alpar@1272
 | 
  1072  | 
  | 
| 
alpar@1272
 | 
  1073  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1074  | 
  
  | 
| 
alpar@1272
 | 
  1075  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1076  | 
  ///
  | 
| 
alpar@1272
 | 
  1077  | 
  inline LpSolverBase::Constr operator<=(const LpSolverBase::Expr &e,
  | 
| 
alpar@1273
 | 
  1078  | 
					 const LpSolverBase::Value &f) 
  | 
| 
alpar@1272
 | 
  1079  | 
  {
 | 
| 
alpar@1272
 | 
  1080  | 
    return LpSolverBase::Constr(e,f);
  | 
| 
alpar@1272
 | 
  1081  | 
  }
  | 
| 
alpar@1272
 | 
  1082  | 
  | 
| 
alpar@1272
 | 
  1083  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1084  | 
  
  | 
| 
alpar@1272
 | 
  1085  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1086  | 
  ///
  | 
| 
alpar@1272
 | 
  1087  | 
  inline LpSolverBase::Constr operator>=(const LpSolverBase::Expr &e,
  | 
| 
alpar@1272
 | 
  1088  | 
					 const LpSolverBase::Expr &f) 
  | 
| 
alpar@1272
 | 
  1089  | 
  {
 | 
| 
alpar@1272
 | 
  1090  | 
    return LpSolverBase::Constr(-LpSolverBase::INF,f-e,0);
  | 
| 
alpar@1272
 | 
  1091  | 
  }
  | 
| 
alpar@1272
 | 
  1092  | 
  | 
| 
alpar@1272
 | 
  1093  | 
  | 
| 
alpar@1272
 | 
  1094  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1095  | 
  
  | 
| 
alpar@1272
 | 
  1096  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1097  | 
  ///
  | 
| 
alpar@1273
 | 
  1098  | 
  inline LpSolverBase::Constr operator>=(const LpSolverBase::Value &e,
  | 
| 
alpar@1272
 | 
  1099  | 
					 const LpSolverBase::Expr &f) 
  | 
| 
alpar@1272
 | 
  1100  | 
  {
 | 
| 
alpar@1272
 | 
  1101  | 
    return LpSolverBase::Constr(f,e);
  | 
| 
alpar@1272
 | 
  1102  | 
  }
  | 
| 
alpar@1272
 | 
  1103  | 
  | 
| 
alpar@1272
 | 
  1104  | 
  | 
| 
alpar@1272
 | 
  1105  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1106  | 
  
  | 
| 
alpar@1272
 | 
  1107  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1108  | 
  ///
  | 
| 
alpar@1272
 | 
  1109  | 
  inline LpSolverBase::Constr operator>=(const LpSolverBase::Expr &e,
  | 
| 
alpar@1273
 | 
  1110  | 
					 const LpSolverBase::Value &f) 
  | 
| 
alpar@1272
 | 
  1111  | 
  {
 | 
| 
alpar@1272
 | 
  1112  | 
    return LpSolverBase::Constr(f,e);
  | 
| 
alpar@1272
 | 
  1113  | 
  }
  | 
| 
alpar@1272
 | 
  1114  | 
  | 
| 
alpar@1272
 | 
  1115  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1116  | 
  
  | 
| 
alpar@1272
 | 
  1117  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1118  | 
  ///
  | 
| 
alpar@1272
 | 
  1119  | 
  inline LpSolverBase::Constr operator==(const LpSolverBase::Expr &e,
  | 
| 
alpar@1272
 | 
  1120  | 
					 const LpSolverBase::Expr &f) 
  | 
| 
alpar@1272
 | 
  1121  | 
  {
 | 
| 
alpar@1272
 | 
  1122  | 
    return LpSolverBase::Constr(0,e-f,0);
  | 
| 
alpar@1272
 | 
  1123  | 
  }
  | 
| 
alpar@1272
 | 
  1124  | 
  | 
| 
alpar@1272
 | 
  1125  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1126  | 
  
  | 
| 
alpar@1272
 | 
  1127  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1128  | 
  ///
  | 
| 
alpar@1273
 | 
  1129  | 
  inline LpSolverBase::Constr operator<=(const LpSolverBase::Value &n,
  | 
| 
alpar@1272
 | 
  1130  | 
					 const LpSolverBase::Constr&c) 
  | 
| 
alpar@1272
 | 
  1131  | 
  {
 | 
| 
alpar@1272
 | 
  1132  | 
    LpSolverBase::Constr tmp(c);
  | 
| 
alpar@1273
 | 
  1133  | 
    ///\todo Create an own exception type.
  | 
| 
alpar@1273
 | 
  1134  | 
    if(!isnan(tmp.lowerBound())) throw LogicError();
  | 
| 
alpar@1273
 | 
  1135  | 
    else tmp.lowerBound()=n;
  | 
| 
alpar@1272
 | 
  1136  | 
    return tmp;
  | 
| 
alpar@1272
 | 
  1137  | 
  }
  | 
| 
alpar@1272
 | 
  1138  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1139  | 
  
  | 
| 
alpar@1272
 | 
  1140  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1141  | 
  ///
  | 
| 
alpar@1272
 | 
  1142  | 
  inline LpSolverBase::Constr operator<=(const LpSolverBase::Constr& c,
  | 
| 
alpar@1273
 | 
  1143  | 
					 const LpSolverBase::Value &n)
  | 
| 
alpar@1272
 | 
  1144  | 
  {
 | 
| 
alpar@1272
 | 
  1145  | 
    LpSolverBase::Constr tmp(c);
  | 
| 
alpar@1273
 | 
  1146  | 
    ///\todo Create an own exception type.
  | 
| 
alpar@1273
 | 
  1147  | 
    if(!isnan(tmp.upperBound())) throw LogicError();
  | 
| 
alpar@1273
 | 
  1148  | 
    else tmp.upperBound()=n;
  | 
| 
alpar@1272
 | 
  1149  | 
    return tmp;
  | 
| 
alpar@1272
 | 
  1150  | 
  }
  | 
| 
alpar@1272
 | 
  1151  | 
  | 
| 
alpar@1272
 | 
  1152  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1153  | 
  
  | 
| 
alpar@1272
 | 
  1154  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1155  | 
  ///
  | 
| 
alpar@1273
 | 
  1156  | 
  inline LpSolverBase::Constr operator>=(const LpSolverBase::Value &n,
  | 
| 
alpar@1272
 | 
  1157  | 
					 const LpSolverBase::Constr&c) 
  | 
| 
alpar@1272
 | 
  1158  | 
  {
 | 
| 
alpar@1272
 | 
  1159  | 
    LpSolverBase::Constr tmp(c);
  | 
| 
alpar@1273
 | 
  1160  | 
    ///\todo Create an own exception type.
  | 
| 
alpar@1273
 | 
  1161  | 
    if(!isnan(tmp.upperBound())) throw LogicError();
  | 
| 
alpar@1273
 | 
  1162  | 
    else tmp.upperBound()=n;
  | 
| 
alpar@1272
 | 
  1163  | 
    return tmp;
  | 
| 
alpar@1272
 | 
  1164  | 
  }
  | 
| 
alpar@1272
 | 
  1165  | 
  ///\e
  | 
| 
alpar@1272
 | 
  1166  | 
  
  | 
| 
alpar@1272
 | 
  1167  | 
  ///\relates LpSolverBase::Constr
  | 
| 
alpar@1272
 | 
  1168  | 
  ///
  | 
| 
alpar@1272
 | 
  1169  | 
  inline LpSolverBase::Constr operator>=(const LpSolverBase::Constr& c,
  | 
| 
alpar@1273
 | 
  1170  | 
					 const LpSolverBase::Value &n)
  | 
| 
alpar@1272
 | 
  1171  | 
  {
 | 
| 
alpar@1272
 | 
  1172  | 
    LpSolverBase::Constr tmp(c);
  | 
| 
alpar@1273
 | 
  1173  | 
    ///\todo Create an own exception type.
  | 
| 
alpar@1273
 | 
  1174  | 
    if(!isnan(tmp.lowerBound())) throw LogicError();
  | 
| 
alpar@1273
 | 
  1175  | 
    else tmp.lowerBound()=n;
  | 
| 
alpar@1272
 | 
  1176  | 
    return tmp;
  | 
| 
alpar@1272
 | 
  1177  | 
  }
  | 
| 
alpar@1272
 | 
  1178  | 
  | 
| 
alpar@1445
 | 
  1179  | 
  ///\e
  | 
| 
alpar@1445
 | 
  1180  | 
  
  | 
| 
alpar@1445
 | 
  1181  | 
  ///\relates LpSolverBase::DualExpr
  | 
| 
alpar@1445
 | 
  1182  | 
  ///
  | 
| 
alpar@1445
 | 
  1183  | 
  inline LpSolverBase::DualExpr operator+(const LpSolverBase::DualExpr &a,
  | 
| 
alpar@1445
 | 
  1184  | 
				      const LpSolverBase::DualExpr &b) 
  | 
| 
alpar@1445
 | 
  1185  | 
  {
 | 
| 
alpar@1445
 | 
  1186  | 
    LpSolverBase::DualExpr tmp(a);
  | 
| 
alpar@1445
 | 
  1187  | 
    tmp+=b; ///\todo Doesn't STL have some special 'merge' algorithm?
  | 
| 
alpar@1445
 | 
  1188  | 
    return tmp;
  | 
| 
alpar@1445
 | 
  1189  | 
  }
  | 
| 
alpar@1445
 | 
  1190  | 
  ///\e
  | 
| 
alpar@1445
 | 
  1191  | 
  
  | 
| 
alpar@1445
 | 
  1192  | 
  ///\relates LpSolverBase::DualExpr
  | 
| 
alpar@1445
 | 
  1193  | 
  ///
  | 
| 
alpar@1445
 | 
  1194  | 
  inline LpSolverBase::DualExpr operator-(const LpSolverBase::DualExpr &a,
  | 
| 
alpar@1445
 | 
  1195  | 
				      const LpSolverBase::DualExpr &b) 
  | 
| 
alpar@1445
 | 
  1196  | 
  {
 | 
| 
alpar@1445
 | 
  1197  | 
    LpSolverBase::DualExpr tmp(a);
  | 
| 
alpar@1445
 | 
  1198  | 
    tmp-=b; ///\todo Doesn't STL have some special 'merge' algorithm?
  | 
| 
alpar@1445
 | 
  1199  | 
    return tmp;
  | 
| 
alpar@1445
 | 
  1200  | 
  }
  | 
| 
alpar@1445
 | 
  1201  | 
  ///\e
  | 
| 
alpar@1445
 | 
  1202  | 
  
  | 
| 
alpar@1445
 | 
  1203  | 
  ///\relates LpSolverBase::DualExpr
  | 
| 
alpar@1445
 | 
  1204  | 
  ///
  | 
| 
alpar@1445
 | 
  1205  | 
  inline LpSolverBase::DualExpr operator*(const LpSolverBase::DualExpr &a,
  | 
| 
alpar@1445
 | 
  1206  | 
				      const LpSolverBase::Value &b) 
  | 
| 
alpar@1445
 | 
  1207  | 
  {
 | 
| 
alpar@1445
 | 
  1208  | 
    LpSolverBase::DualExpr tmp(a);
  | 
| 
alpar@1445
 | 
  1209  | 
    tmp*=b; ///\todo Doesn't STL have some special 'merge' algorithm?
  | 
| 
alpar@1445
 | 
  1210  | 
    return tmp;
  | 
| 
alpar@1445
 | 
  1211  | 
  }
  | 
| 
alpar@1445
 | 
  1212  | 
  
  | 
| 
alpar@1445
 | 
  1213  | 
  ///\e
  | 
| 
alpar@1445
 | 
  1214  | 
  
  | 
| 
alpar@1445
 | 
  1215  | 
  ///\relates LpSolverBase::DualExpr
  | 
| 
alpar@1445
 | 
  1216  | 
  ///
  | 
| 
alpar@1445
 | 
  1217  | 
  inline LpSolverBase::DualExpr operator*(const LpSolverBase::Value &a,
  | 
| 
alpar@1445
 | 
  1218  | 
				      const LpSolverBase::DualExpr &b) 
  | 
| 
alpar@1445
 | 
  1219  | 
  {
 | 
| 
alpar@1445
 | 
  1220  | 
    LpSolverBase::DualExpr tmp(b);
  | 
| 
alpar@1445
 | 
  1221  | 
    tmp*=a; ///\todo Doesn't STL have some special 'merge' algorithm?
  | 
| 
alpar@1445
 | 
  1222  | 
    return tmp;
  | 
| 
alpar@1445
 | 
  1223  | 
  }
  | 
| 
alpar@1445
 | 
  1224  | 
  ///\e
  | 
| 
alpar@1445
 | 
  1225  | 
  
  | 
| 
alpar@1445
 | 
  1226  | 
  ///\relates LpSolverBase::DualExpr
  | 
| 
alpar@1445
 | 
  1227  | 
  ///
  | 
| 
alpar@1445
 | 
  1228  | 
  inline LpSolverBase::DualExpr operator/(const LpSolverBase::DualExpr &a,
  | 
| 
alpar@1445
 | 
  1229  | 
				      const LpSolverBase::Value &b) 
  | 
| 
alpar@1445
 | 
  1230  | 
  {
 | 
| 
alpar@1445
 | 
  1231  | 
    LpSolverBase::DualExpr tmp(a);
  | 
| 
alpar@1445
 | 
  1232  | 
    tmp/=b; ///\todo Doesn't STL have some special 'merge' algorithm?
  | 
| 
alpar@1445
 | 
  1233  | 
    return tmp;
  | 
| 
alpar@1445
 | 
  1234  | 
  }
  | 
| 
alpar@1445
 | 
  1235  | 
  
  | 
| 
alpar@1272
 | 
  1236  | 
  | 
| 
athos@1246
 | 
  1237  | 
} //namespace lemon
  | 
| 
athos@1246
 | 
  1238  | 
  | 
| 
athos@1246
 | 
  1239  | 
#endif //LEMON_LP_BASE_H
  |